Compare commits
9 Commits
| Author | SHA1 | Date | |
|---|---|---|---|
| a3ea099105 | |||
| c535c4756c | |||
| 321ff8a4ee | |||
| 531ae6c8dc | |||
| b3f41caf6e | |||
| 7716e1e291 | |||
| 1b18f10f4e | |||
| 52c4cdab32 | |||
| 69f089e53a |
@@ -22,15 +22,17 @@ if(PROJECT_IS_TOP_LEVEL)
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# The behavioral tests drive the real wire protocols over a simavr pty
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# (as the host tools do) and actually flash the device. The runners are
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# host programs built at configure time against libsimavr; if they or
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# Python are missing, only the size tests run.
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find_program(_host_cc NAMES cc gcc)
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# host programs built at configure time against libsimavr (C++23 — what
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# the distribution's compiler speaks in full); if they or Python are
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# missing, only the size tests run.
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find_program(_host_cxx NAMES c++ g++)
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find_package(Python3 COMPONENTS Interpreter)
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if(_host_cc AND Python3_FOUND)
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if(_host_cxx AND Python3_FOUND)
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set(PB_DEVICE ${CMAKE_BINARY_DIR}/pureboot_device)
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execute_process(
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COMMAND ${_host_cc} -O2 -I/usr/include/simavr -I/usr/include/simavr/parts
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-o ${PB_DEVICE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pureboot_device.c
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COMMAND ${_host_cxx} -std=c++23 -Wall -Wextra -O2
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-I/usr/include/simavr -I/usr/include/simavr/parts
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-o ${PB_DEVICE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pureboot_device.cpp
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-lsimavr -lsimavrparts -lelf -lutil
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RESULT_VARIABLE _pbdev_res ERROR_VARIABLE _pbdev_err)
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if(NOT _pbdev_res EQUAL 0)
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@@ -40,8 +42,9 @@ if(PROJECT_IS_TOP_LEVEL)
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if(LIBAVR_MCU STREQUAL "atmega328p")
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set(TSB_DEVICE ${CMAKE_BINARY_DIR}/tsb_device)
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execute_process(
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COMMAND ${_host_cc} -O2 -I/usr/include/simavr -I/usr/include/simavr/parts
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-o ${TSB_DEVICE} ${CMAKE_CURRENT_SOURCE_DIR}/test/device.c
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COMMAND ${_host_cxx} -std=c++23 -Wall -Wextra -O2
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-I/usr/include/simavr -I/usr/include/simavr/parts
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-o ${TSB_DEVICE} ${CMAKE_CURRENT_SOURCE_DIR}/test/device.cpp
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-lsimavr -lsimavrparts -lelf
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RESULT_VARIABLE _dev_res ERROR_VARIABLE _dev_err)
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if(NOT _dev_res EQUAL 0)
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@@ -66,16 +69,18 @@ function(add_image_outputs name)
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$<TARGET_FILE:${name}> $<TARGET_FILE:${name}>.bin)
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endfunction()
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# The TinySafeBoot protocol reimplemented on libavr in three variants that trade
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# The TinySafeBoot protocol reimplemented on libavr in variants that trade
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# clarity for size. Each links into the ATmega328P boot section (BOOTSZ selects
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# its size; BOOTRST vectors a reset to its base) with -nostartfiles — a polled
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# loader has no use for the crt or the vector table. The naked entry sits in
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# .vectors, laid first, and runs. The boot base is FLASHEND+1 minus the section
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# size; the linker section-start and the source's boot_bytes agree. tsb_app is
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# loader has no use for the crt or the vector table. The entry sits in
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# .vectors, laid first, and runs — avr::startup::entry on the policy tier,
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# the experiment tiers' own naked stubs elsewhere, each documented in its
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# source. The boot base is FLASHEND+1 minus the section size; the linker
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# section-start and the source's boot_bytes agree. tsb_app is
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# the application's reset vector, pinned to 0 here so the loaders jump to a
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# named function; --pmem-wrap-around lets relaxation turn that absolute jump
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# into the wrapped rjmp AVR's modulo-flash PC actually executes.
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# All three implement the full oracle feature set (see oracle/README.md):
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# All four implement the full oracle feature set (see oracle/README.md):
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# watchdog bail, one-wire half-duplex, config-page activation timeout, password
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# gate, emergency erase, config/flash/EEPROM read-write. They differ only in how,
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# and the size gradient is the cost of that "how" — see dev/lessons.md.
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@@ -167,6 +172,14 @@ if(PROJECT_IS_TOP_LEVEL)
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add_test(NAME pureboot.planner
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/test_planner.py
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${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py)
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add_test(NAME pureboot.scan
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/test_scan.py
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${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py)
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# CMakePresets.json is generated; hand edits drift the moment the
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# generator reruns, so the gate holds the pair together.
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add_test(NAME presets.generated
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/tools/make_presets.py
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--check)
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add_test(NAME pureboot.handshake
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/test_handshake.py)
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add_test(NAME pureboot.updatelink
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@@ -270,6 +283,12 @@ if(PROJECT_IS_TOP_LEVEL)
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add_test(NAME pureboot_autobaud.size
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COMMAND ${CMAKE_COMMAND} -DSIZE_TOOL=${CMAKE_SIZE} -DELF=$<TARGET_FILE:pureboot_autobaud>
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-DLIMIT=${PUREBOOT_LIMIT} -P ${CMAKE_CURRENT_SOURCE_DIR}/test/check_size.cmake)
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# The measured unit is the loader's only RAM object and sits at the very
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# start of SRAM — where the host reads the bit period from (--info's
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# measured clock), so the address is wire contract, not layout accident.
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add_test(NAME pureboot_autobaud.unit
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COMMAND ${CMAKE_COMMAND} -DOBJDUMP=${CMAKE_OBJDUMP} -DELF=$<TARGET_FILE:pureboot_autobaud>
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-DRAM_START=${PUREBOOT_RAM_START} -P ${CMAKE_CURRENT_SOURCE_DIR}/test/check_unit.cmake)
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# One point of the exhaustive matrix, named from its resolved parameters
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# so the enumeration cannot collide with itself. `pins` is empty for the
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@@ -390,6 +409,38 @@ if(PROJECT_IS_TOP_LEVEL)
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RX ${PUREBOOT_USART1_RX} TX ${PUREBOOT_USART1_TX})
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endif()
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# The OSCCAL axis at its fixed points: the stock shape, and the tightest
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# image in the space with the trim on top — the axis adds one register
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# write, and these points hold both of its addressing encodings to every
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# chip's budget.
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pureboot_size_variant(pureboot_osccal OSCCAL 0x9c)
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pureboot_size_variant(pureboot_autobaud_osccal SERIAL autobaud OSCCAL 0x9c)
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if(PUREBOOT_HAS_USART)
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pureboot_size_variant(pureboot_autobaud_osccal_on_usart0 SERIAL autobaud OSCCAL 0x9c
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RX ${PUREBOOT_USART0_RX} TX ${PUREBOOT_USART0_TX})
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endif()
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# The trim byte, observed through the wire from the first prompt — one
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# chip per OSCCAL addressing class: extended I/O on the 328P (data 0x66,
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# an sts — DS40002061B §36), plain I/O on the 85 (data 0x51, an out —
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# Atmel-2586 §21).
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if(LIBAVR_MCU MATCHES "^(atmega328p|attiny85)$" AND DEFINED PB_DEVICE)
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if(LIBAVR_MCU STREQUAL "atmega328p")
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set(_osccal_addr 0x66)
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else()
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set(_osccal_addr 0x51)
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endif()
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get_target_property(_osccal_hz pureboot_osccal PUREBOOT_HZ)
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get_target_property(_osccal_baud pureboot_osccal PUREBOOT_BAUD)
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add_test(NAME pureboot.osccal
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbosccal.py
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${PB_DEVICE} $<TARGET_FILE:pureboot_osccal> ${PUREBOOT_SIM_MCU}
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${_osccal_hz} ${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_osccal_baud}
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${_osccal_addr} 0x9c ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
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${CMAKE_BINARY_DIR}/pbosccal-work)
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set_tests_properties(pureboot.osccal PROPERTIES TIMEOUT 120)
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endif()
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# One configured deployment end to end — a real board's shape rather
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# than the stock assumption: the ATmega328P on its shipped 1 MHz fuses,
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# the software UART on hand-picked pins (TX = PB1, RX = PB5), the ladder
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@@ -468,9 +519,9 @@ if(PROJECT_IS_TOP_LEVEL)
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set_tests_properties(pureboot.usart1 PROPERTIES TIMEOUT 180)
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endif()
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# The autobaud variants driven end to end over the software-UART bridge (both
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# under review — pureboot/autobaud.md): the host sends the 0xC0 calibration
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# pulse, the loader times it, locks, and programs. Run on the near-flash 328P
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# The autobaud loader driven end to end over the software-UART bridge:
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# the host sends the 0xC0 calibration pulse, the loader times it, locks,
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# and programs. Run on the near-flash 328P
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# and the word-addressed 1284P — the two flash-addressing classes — and each
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# at two clocks with the one binary, which is the clock-agnostic property
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# autobaud exists for (test/pbautobaud.py). The fixture application banners
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@@ -2,7 +2,7 @@
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`master` carries `bootloader.atsln`, so this branch does too: `ide/bootloader.atsln`
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builds the loaders from the same sources Ninja does, to a **byte-identical
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`.text`** — 404 B for the 328P pureboot loader, 510 B for the `tsb_asm` tier in
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`.text`** — 400 B for the 328P pureboot loader, 510 B for the `tsb_asm` tier in
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its 512-byte section. CMake remains the build system; the solution is here so the
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port opens in Studio as its predecessor did.
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2
libavr
2
libavr
Submodule libavr updated: 43b1f34ed1...911a87538f
@@ -136,6 +136,19 @@ elseif(LIBAVR_MCU STREQUAL "atmega644pa")
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set(_pb_sim_mcu atmega644p)
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endif()
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# Where SRAM begins: the classic megas keep it right after the plain I/O
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# registers, the x8/x4 generations push it past their extended I/O file, and
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# the tinies match the classics. An autobaud loader's measured unit lives at
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# exactly this address (the host reads it there — pureboot.py), and the
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# unit-position test holds the layout to it.
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if(LIBAVR_MCU MATCHES "^atmega(8|16|32)a?$")
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set(_pb_ram 0x60)
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elseif(LIBAVR_MCU MATCHES "^atmega")
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set(_pb_ram 0x100)
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else()
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set(_pb_ram 0x60)
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endif()
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# The function runs in its caller's scope, so everything it needs crosses
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# scopes as global properties.
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set_property(GLOBAL PROPERTY PUREBOOT_BASE_HEX ${_pb_base_hex})
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@@ -155,6 +168,7 @@ set(PUREBOOT_SLOT ${_pb_slot} PARENT_SCOPE)
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set(PUREBOOT_LIMIT ${_pb_limit} PARENT_SCOPE)
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set(PUREBOOT_EEPROM ${_pb_eeprom} PARENT_SCOPE)
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set(PUREBOOT_DEFAULT_HZ ${_pb_hz} PARENT_SCOPE)
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set(PUREBOOT_RAM_START ${_pb_ram} PARENT_SCOPE)
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set(PUREBOOT_HAS_USART ${_pb_has_usart} PARENT_SCOPE)
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set(PUREBOOT_HAS_USART1 ${_pb_has_usart1} PARENT_SCOPE)
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set(PUREBOOT_SIM_MCU ${_pb_sim_mcu} PARENT_SCOPE)
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@@ -212,7 +226,7 @@ endfunction()
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# pureboot_add_loader(<name> [CLOCK <hz>] [BAUD <bd>]
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# [SERIAL auto|hardware|software|autobaud] [USART <n>]
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# [RX <pin>] [TX <pin>] [TIMEOUT <s>])
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# [RX <pin>] [TX <pin>] [TIMEOUT <s>] [OSCCAL <byte>])
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#
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# The loader target plus its flashable images (<name>.hex for a programmer,
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# <name>.bin for --update-loader). The resolved deployment is stamped on the
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@@ -225,8 +239,15 @@ endfunction()
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# and one binary per chip serves every F_CPU and every rate. The stamped
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# PUREBOOT_HZ/PUREBOOT_BAUD then record what a harness should *drive* it at,
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# not what it was built for.
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#
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# OSCCAL bakes a measured oscillator trim into the loader (README.md: the
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# RC-oscillator deployment answer): the byte is written at the top of run(),
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# so every reset path — the watchdog hand-over included — runs on the
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# corrected clock. Orthogonal to the backend: an autobaud build may carry it
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# purely for the application's benefit, its own link being clock-free. No
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# value, no code.
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function(pureboot_add_loader name)
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cmake_parse_arguments(PB "" "CLOCK;BAUD;SERIAL;USART;RX;TX;TIMEOUT" "" ${ARGN})
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cmake_parse_arguments(PB "" "CLOCK;BAUD;SERIAL;USART;RX;TX;TIMEOUT;OSCCAL" "" ${ARGN})
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if(PB_UNPARSED_ARGUMENTS)
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message(FATAL_ERROR "pureboot_add_loader(${name}): unknown arguments ${PB_UNPARSED_ARGUMENTS}")
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endif()
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@@ -325,6 +346,13 @@ function(pureboot_add_loader name)
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set(_defines PUREBOOT_CLOCK_HZ=${PB_CLOCK} PUREBOOT_BAUD=${PB_BAUD} PUREBOOT_TIMEOUT=${PB_TIMEOUT}
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${_serial_defines})
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endif()
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if(DEFINED PB_OSCCAL)
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math(EXPR _osccal "${PB_OSCCAL}" OUTPUT_FORMAT DECIMAL)
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if(_osccal LESS 0 OR _osccal GREATER 255)
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message(FATAL_ERROR "pureboot_add_loader(${name}): OSCCAL ${PB_OSCCAL} is not one byte")
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endif()
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list(APPEND _defines PUREBOOT_OSCCAL=${_osccal})
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endif()
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add_executable(${name} ${CMAKE_CURRENT_FUNCTION_LIST_DIR}/pureboot.cpp)
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target_link_libraries(${name} PRIVATE libavr)
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@@ -28,32 +28,34 @@ it carries the calibration machinery and no clock at all.
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| Chip | Flash | Loader at | Link | Stock | Autobaud |
|
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|---|---|---|---|---|---|
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| ATtiny13, ATtiny13A † | 1 KiB | 0x0200 | software | 394 B | 464 B |
|
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| ATtiny25 † | 2 KiB | 0x0600 | software | 398 B | 468 B |
|
||||
| ATtiny45 † | 4 KiB | 0x0e00 | software | 402 B | 472 B |
|
||||
| ATtiny85 † | 8 KiB | 0x1e00 | software | 402 B | 472 B |
|
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| ATmega8, 8A | 8 KiB | 0x1e00 | USART0 | 364 B | 478 B |
|
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| ATmega16, 16A | 16 KiB | 0x3e00 | USART0 | 366 B | 482 B |
|
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| ATmega32, 32A | 32 KiB | 0x7e00 | USART0 | 366 B | 482 B |
|
||||
| ATmega48, 48A, 48P, 48PA † | 4 KiB | 0x0e00 | USART0 | 392 B | 468 B |
|
||||
| ATmega88, 88A, 88P, 88PA | 8 KiB | 0x1e00 | USART0 | 402 B | 478 B |
|
||||
| ATmega168, 168A, 168P, 168PA | 16 KiB | 0x3e00 | USART0 | 404 B | 482 B |
|
||||
| ATmega328, 328P | 32 KiB | 0x7e00 | USART0 | 404 B | 482 B |
|
||||
| ATmega164A, 164P, 164PA | 16 KiB | 0x3e00 | USART0 | 404 B | 482 B |
|
||||
| ATmega324A, 324P, 324PA | 32 KiB | 0x7e00 | USART0 | 404 B | 482 B |
|
||||
| ATmega644, 644A, 644P, 644PA | 64 KiB | 0xfe00 | USART0 | 398 B | 476 B |
|
||||
| ATmega1284, 1284P | 128 KiB | 0x1fe00 | USART0 | 424 B | 502 B |
|
||||
| ATtiny13, ATtiny13A † | 1 KiB | 0x0200 | software | 390 B | 460 B |
|
||||
| ATtiny25 † | 2 KiB | 0x0600 | software | 394 B | 464 B |
|
||||
| ATtiny45 † | 4 KiB | 0x0e00 | software | 398 B | 468 B |
|
||||
| ATtiny85 † | 8 KiB | 0x1e00 | software | 398 B | 468 B |
|
||||
| ATmega8, 8A | 8 KiB | 0x1e00 | USART0 | 360 B | 474 B |
|
||||
| ATmega16, 16A | 16 KiB | 0x3e00 | USART0 | 362 B | 480 B |
|
||||
| ATmega32, 32A | 32 KiB | 0x7e00 | USART0 | 362 B | 480 B |
|
||||
| ATmega48, 48A, 48P, 48PA † | 4 KiB | 0x0e00 | USART0 | 388 B | 464 B |
|
||||
| ATmega88, 88A, 88P, 88PA | 8 KiB | 0x1e00 | USART0 | 398 B | 474 B |
|
||||
| ATmega168, 168A, 168P, 168PA | 16 KiB | 0x3e00 | USART0 | 400 B | 480 B |
|
||||
| ATmega328, 328P | 32 KiB | 0x7e00 | USART0 | 400 B | 480 B |
|
||||
| ATmega164A, 164P, 164PA | 16 KiB | 0x3e00 | USART0 | 400 B | 480 B |
|
||||
| ATmega324A, 324P, 324PA | 32 KiB | 0x7e00 | USART0 | 400 B | 480 B |
|
||||
| ATmega644, 644A, 644P, 644PA | 64 KiB | 0xfe00 | USART0 | 394 B | 474 B |
|
||||
| ATmega1284, 1284P | 128 KiB | 0x1fe00 | USART0 | 420 B | 500 B |
|
||||
|
||||
† No hardware boot section: the host patches the reset vector, and the budget
|
||||
is 510 bytes, since the slot's last word is the trampoline.
|
||||
|
||||
The tightest fit in the whole space is the 1284s' autobaud build deployed on a
|
||||
USART's own pins, 506 of its 512 — they alone carry the far-flash machinery
|
||||
(ELPM reads, RAMPZ page commands), autobaud alone carries the calibration loop,
|
||||
and a bit-banged link on a USART's pins alone has to release it (below). The
|
||||
same build on the default pins is 502. The flash bank riding in a transfer's
|
||||
selector byte keeps even those chips' addressing the same 16-bit form every
|
||||
other chip uses, which is why they are no longer the outlier they were.
|
||||
USART's own pins with the `OSCCAL` trim baked, 510 of its 512 — they alone
|
||||
carry the far-flash machinery (ELPM reads, RAMPZ page commands), autobaud
|
||||
alone carries the calibration loop, a bit-banged link on a USART's pins alone
|
||||
has to release it (below), and the trim adds its one register write. Without
|
||||
the trim that build is 504; on the default pins, 500. The flash bank riding
|
||||
in a transfer's selector byte keeps even those chips' addressing the same
|
||||
16-bit form every other chip uses, which is why they are no longer the
|
||||
outlier they were.
|
||||
|
||||
The software UART enables the RX pull-up; TX idles high. All multi-byte wire
|
||||
quantities are little-endian.
|
||||
@@ -72,6 +74,7 @@ repo's build and by a downstream project alike:
|
||||
| `USART <n>` | the USART instance (x4 megas carry two) | 0 |
|
||||
| `RX <pin>`, `TX <pin>` | software-UART pins | `pb0`, `pb1` |
|
||||
| `TIMEOUT <s>` | the activation window | 8 |
|
||||
| `OSCCAL <byte>` | a measured oscillator trim, applied before anything runs | none — no value, no code |
|
||||
|
||||
The default baud is the fastest of 115200/57600/38400/19200/9600 the clock
|
||||
reaches within 2.5 % — the same U2X-included divisor search libavr's baud
|
||||
@@ -122,12 +125,13 @@ window per reset. Measure with an application in place.
|
||||
A downstream project brings its usual libavr setup (the `libavr` target, the
|
||||
chip via the `LIBAVR_MCU` toolchain preset), consumes this directory, and
|
||||
states its deployment — an ATmega328P on its shipped 1 MHz fuses with the
|
||||
software UART on hand-picked pins, say:
|
||||
software UART on hand-picked pins, say. A submodule pins the loader version
|
||||
(the tags name them; this repo pins its own libavr the same way), where
|
||||
FetchContent tracks whatever `main` is:
|
||||
|
||||
```cmake
|
||||
FetchContent_Declare(bootloader GIT_REPOSITORY git@git.blackmark.me:avr/bootloader.git GIT_TAG main)
|
||||
FetchContent_MakeAvailable(bootloader)
|
||||
add_subdirectory(${bootloader_SOURCE_DIR}/pureboot pureboot)
|
||||
# git submodule add <forge>/avr/bootloader.git bootloader — or FetchContent
|
||||
add_subdirectory(bootloader/pureboot pureboot)
|
||||
|
||||
pureboot_add_loader(myboot CLOCK 1000000 SERIAL software TX pb1 RX pb5)
|
||||
```
|
||||
@@ -285,7 +289,9 @@ Two generations exist. **1 through 4** speak one session — a 12-byte info bloc
|
||||
from `b`, and a command per memory (`R`/`W` flash, `r`/`w` EEPROM, `F` fuses).
|
||||
**5** replaced those with the single `G`/`g` pair over selector-named spaces
|
||||
above; the shipped tool speaks both, choosing on the version it reads, so a
|
||||
deployed pureboot 4 stays drivable and self-updatable to 5.
|
||||
deployed pureboot 4 stays drivable and self-updatable to 5. **6** changes
|
||||
nothing on the wire: it marks the builds that may carry a baked `OSCCAL` trim
|
||||
(Configuration), so a tool driving an update knows such images exist.
|
||||
|
||||
Every closed generation is tagged in this repo at its era's last commit — the
|
||||
commit just before the next version bump, so a tag holds everything its
|
||||
@@ -350,6 +356,18 @@ mega (SPM only executes from the boot section — reflash the .hex), but *runs*
|
||||
on a patched-vector chip, and the ordinary `--update-loader` flow re-homes it
|
||||
into the top slot from there (`pureboot.rehome`).
|
||||
|
||||
**Fixed-baud on an internal RC oscillator is a deployment risk the build
|
||||
cannot see.** The factory trim is ±10 % where an 8N1 frame survives about
|
||||
±4: a part at the edge answers nothing at the built rate, and the symptom —
|
||||
silence — reads as a wiring fault (a real ATtiny13A measured −5.5 %, outside
|
||||
every standard rate at its own documented default). The **autobaud build is
|
||||
the deployment-proof backend**: it has no rate to miss. Where fixed-baud on
|
||||
RC is wanted anyway, measure first and bake the trim: an autobaud session's
|
||||
`--info` prints the part's true clock from the loader's own measured bit
|
||||
period, OSCCAL moves the oscillator about 1 % per step, and `OSCCAL <byte>`
|
||||
builds the correction in — one build–measure iteration converges. A loader
|
||||
already deployed and silent is diagnosed with `--scan` (Host tool).
|
||||
|
||||
## Updating the loader
|
||||
|
||||
`pureboot.py --update-loader new_pureboot.bin` replaces the resident loader
|
||||
@@ -374,6 +392,11 @@ The host retunes on the open port, so no DTR pulse resets the copy it is talking
|
||||
to. Omit them against a changed link and the update stops after installing the
|
||||
staging copy, saying so and naming this as the cause.
|
||||
|
||||
An `OSCCAL`-baked image is a link change in effect even at an unchanged rate
|
||||
on paper: the staging copy shifts the physical clock the moment its `run()`
|
||||
starts, and from then on speaks exactly what it was built for. Declare it
|
||||
like any other link change — `--staged-baud` with the new build's rate.
|
||||
|
||||
The preflight refuses an image built for another chip: the stamp every pureboot
|
||||
binary carries must resolve to the device's own geometry, and the error names
|
||||
both. Die revisions share their base signature and geometry, so their images
|
||||
@@ -430,7 +453,19 @@ application data into a mega's reset walk region.
|
||||
|
||||
`--autobaud` opens with the calibration pulse instead of the plain knock, for a
|
||||
loader built `SERIAL autobaud`; the rest of the session is identical, at
|
||||
whatever `--baud` the host chose.
|
||||
whatever `--baud` the host chose. Its `--info` adds the **measured clock** —
|
||||
the loader's bit-period unit, decoded and multiplied by the session rate —
|
||||
which is the number an `OSCCAL` bake or a fixed-baud build for the part is
|
||||
held against; `--clock <hz>` states the drift against a nominal.
|
||||
|
||||
`--scan` is the diagnosis once a fixed-baud loader has gone silent: it walks
|
||||
±10 % around `--baud` in 2 % steps, nearest first, one probe per activation
|
||||
window — reset the target as each probe announces itself (a board with DTR
|
||||
wired to reset is pulsed by the probe's own port-open). A loader
|
||||
off-frequency answers at its oscillator's ratio, and the report gives the
|
||||
found rate as the session workaround, the offset, the OSCCAL correction's
|
||||
direction at ~1 % per step, and the autobaud way out. Standalone — no other
|
||||
operation combines with it.
|
||||
|
||||
`--peek ADDR[:N]` and `--poke ADDR:HEX` reach the data space (pureboot 5) —
|
||||
SRAM, and through the same address space the register file and every I/O
|
||||
@@ -480,7 +515,12 @@ Per chip preset, `ctest` runs:
|
||||
too. The timeout is a constant and is no axis;
|
||||
- `pureboot_autobaud.size` — the clock-free build, which has no clock or baud
|
||||
axis of its own: one binary per chip has to serve every point the matrix
|
||||
below sweeps;
|
||||
below sweeps. `pureboot*osccal*.size` add the `OSCCAL` trim on the stock
|
||||
shape and on the tightest image in the space (autobaud on a USART's own
|
||||
pins), holding both of the trim write's addressing encodings to the budget;
|
||||
- `pureboot_autobaud.unit` — the measured bit period is the loader's only RAM
|
||||
object and sits exactly at ram_start, where `--info` reads it: wire
|
||||
contract, not layout accident;
|
||||
- `pbm_*.size` — with `PUREBOOT_FULL_MATRIX=1`, the exhaustive cross product
|
||||
replacing that compact matrix, on **every** chip: every plausible oscillator
|
||||
(the internal ones, the CKDIV8 floor, the plain and the UART crystals) ×
|
||||
@@ -503,8 +543,15 @@ Per chip preset, `ctest` runs:
|
||||
recovery properties, the surgery, the staging composition, the boot-fuse
|
||||
decode, the update preflight over synthetic fuse bytes, and the repairing
|
||||
verify against a fake device;
|
||||
- `pureboot.scan` — `--scan`'s walk and report logic: the probe order, the
|
||||
rate arithmetic, and the trim advice's direction. A pty carries bytes at
|
||||
any termios rate, so the rate physics itself belongs to the hardware
|
||||
harness, and what the wire would arbitrate is pinned as logic;
|
||||
- `presets.generated` — CMakePresets.json matches its generator
|
||||
(`tools/make_presets.py --check`), so a hand edit or a generator change
|
||||
cannot drift the pair apart;
|
||||
- `pureboot.protocol` — end to end against a simavr device
|
||||
(`test/pureboot_device.c`: a hardware USART as a pty, or a cycle-timed
|
||||
(`test/pureboot_device.cpp`: a hardware USART as a pty, or a cycle-timed
|
||||
GPIO⇄pty bridge for a software-UART build, plus the SPM/NVM module simavr's
|
||||
tiny cores lack) driven by the real host tool through knock-from-reset,
|
||||
program + verify of both memories, session reconnect, an external reset
|
||||
@@ -535,15 +582,21 @@ Per chip preset, `ctest` runs:
|
||||
- `pureboot.update` — the full `--update-loader` flow, then every power-fail
|
||||
phase: the device is killed mid-write, restarted from its flash dump, and a
|
||||
re-run must complete the update with the application intact;
|
||||
- `pureboot.osccal` (328P, t85) — a loader built with the `OSCCAL` axis holds
|
||||
the trim register at the built byte from its first prompt, observed through
|
||||
the wire on one chip per addressing encoding (`sts` and low-I/O `out`);
|
||||
- `pureboot.autobaud` (328P, 1284P) — the clock-free build over the GPIO⇄pty
|
||||
bridge: the calibration handshake, a flash + EEPROM + fuse round trip against
|
||||
the simulator's own memory, a data-space round trip, the hand-over — then the
|
||||
same binary again at double the clock, which is the property the backend
|
||||
exists for. A lone calibration pulse with no knock behind it must still let
|
||||
exists for. The measured clock `--info` prints is asserted against the
|
||||
simulator's exact clock, inside the unit encoding's own envelope, at both
|
||||
points. A lone calibration pulse with no knock behind it must still let
|
||||
the application boot, so no wait in activation can be unbounded.
|
||||
|
||||
`size`, `pi`, `planner` and `handshake` are host logic and run anywhere; the
|
||||
simulator-driven targets need simavr and a pty, so they are POSIX-only.
|
||||
`size`, `unit`, `pi`, `planner`, `scan` and `handshake` are host logic and run
|
||||
anywhere; the simulator-driven targets need simavr and a pty, so they are
|
||||
POSIX-only.
|
||||
|
||||
## Hardware
|
||||
|
||||
|
||||
@@ -38,13 +38,6 @@ using dev = avr::device<{.clock = avr::hertz_t{PUREBOOT_CLOCK_HZ}}>;
|
||||
constexpr avr::baud_t wire_baud{PUREBOOT_BAUD};
|
||||
#endif
|
||||
|
||||
// The watchdog reset flag's home: MCUSR, or the classic megas' MCUCSR.
|
||||
consteval std::int16_t wdrf_field()
|
||||
{
|
||||
auto reg = std::string_view{avr::hw::db.regs[static_cast<std::size_t>(avr::power::detail::reset_reg())].name};
|
||||
return avr::hw::db.field_index(reg, "WDRF");
|
||||
}
|
||||
|
||||
// The loader owns the top 512 bytes; a staging copy goes in the slot below.
|
||||
// Chips without a hardware boot section — the tinies and the m48s, whose SPM
|
||||
// runs from anywhere (Atmel-8271 §26) — keep the application's relocated
|
||||
@@ -72,9 +65,17 @@ constexpr std::uint8_t timeout_seconds = PUREBOOT_TIMEOUT;
|
||||
#endif
|
||||
constexpr avr::uint24_t autobaud_budget = PUREBOOT_AUTOBAUD_POLLS;
|
||||
|
||||
// A build may bake a measured oscillator trim (README.md: the RC-oscillator
|
||||
// deployment answer); the byte is applied at the top of run(). Orthogonal to
|
||||
// the serial backend — an autobaud build may carry it for the application's
|
||||
// benefit alone.
|
||||
#if defined(PUREBOOT_OSCCAL)
|
||||
static_assert(PUREBOOT_OSCCAL >= 0 && PUREBOOT_OSCCAL <= 0xff, "PUREBOOT_OSCCAL is one OSCCAL byte");
|
||||
#endif
|
||||
|
||||
// The loader's one identity number. The protocol carries none of its own —
|
||||
// a version implies it, and the host tool holds that map (README.md).
|
||||
constexpr std::uint8_t version = 5;
|
||||
constexpr std::uint8_t version = 6;
|
||||
|
||||
// The image's identity stamp, for the host tool rather than for the wire: an
|
||||
// update image is a bare 512-byte slot, and without this nothing in it says
|
||||
@@ -166,27 +167,6 @@ constexpr char usart_digit = '0' + PUREBOOT_USART;
|
||||
constexpr char usart_digit = '0';
|
||||
#endif
|
||||
|
||||
// Release a hardware USART the application may have left enabled onto a
|
||||
// bit-banged link's pins. A software transmitter drives its TX pin through the
|
||||
// port register, but while that USART's TXEN is set the USART owns the pin and
|
||||
// the port write does nothing — the loader would receive and obey yet never
|
||||
// answer. Writing UCSRnB zero hands the pin back to the port. Guarded on the
|
||||
// pin actually being a USART's TXD, so a link on non-USART pins emits nothing.
|
||||
template <char Inst, avr::io::pin Tx>
|
||||
[[gnu::always_inline]] inline void release_usart_on()
|
||||
{
|
||||
if constexpr (avr::uart::has_usart<Inst>())
|
||||
if constexpr (avr::uart::detail::usart_pin<Inst>("TXD") == Tx)
|
||||
avr::hw::reg_impl<avr::uart::detail::ureg<Inst, "UCSR#B">()>::write(0);
|
||||
}
|
||||
|
||||
template <avr::io::pin Tx>
|
||||
[[gnu::always_inline]] inline void release_usarts_on()
|
||||
{
|
||||
release_usart_on<'0', Tx>();
|
||||
release_usart_on<'1', Tx>();
|
||||
}
|
||||
|
||||
template <avr::hertz_t C, avr::baud_t B>
|
||||
struct hardware_link {
|
||||
using uart = avr::uart::usart<usart_digit, C, {.baud = B, .max_baud_error = 2.5_pct}>;
|
||||
@@ -233,7 +213,6 @@ struct software_link {
|
||||
static void init()
|
||||
{
|
||||
avr::init<rx_t, tx_t>();
|
||||
release_usarts_on<avr::PUREBOOT_TX>();
|
||||
}
|
||||
|
||||
static bool pending()
|
||||
@@ -267,7 +246,6 @@ struct autobaud_link {
|
||||
static void init()
|
||||
{
|
||||
avr::init<uart>();
|
||||
release_usarts_on<avr::PUREBOOT_TX>();
|
||||
}
|
||||
|
||||
static std::uint8_t rx()
|
||||
@@ -343,9 +321,14 @@ consteval std::uint32_t window_polls()
|
||||
return timeout_seconds * static_cast<std::uint32_t>(dev::clock.hz / link::poll_cycles);
|
||||
}
|
||||
|
||||
// The countdown in the narrowest type that holds it: a fourth byte would
|
||||
// cost a wider decrement chain at every poll for range most windows never
|
||||
// use (the autobaud budget makes the same choice).
|
||||
using window_t = std::conditional_t<window_polls() <= 0xffffff, avr::uint24_t, std::uint32_t>;
|
||||
|
||||
bool pending_before_deadline()
|
||||
{
|
||||
std::uint32_t polls = window_polls();
|
||||
window_t polls = window_polls();
|
||||
do {
|
||||
if (link::pending())
|
||||
return true;
|
||||
@@ -477,9 +460,15 @@ void fill_page(std::uint8_t bank, std::uint16_t at)
|
||||
|
||||
[[noreturn]] void run()
|
||||
{
|
||||
#if defined(PUREBOOT_OSCCAL)
|
||||
// The build's oscillator trim, ahead of everything — the WDRF bail
|
||||
// included — so every path out of reset, the watchdog hand-over to the
|
||||
// application first among them, runs on the corrected clock.
|
||||
avr::clock::calibrate(PUREBOOT_OSCCAL);
|
||||
#endif
|
||||
// A watchdog reset belongs to the application, whose watchdog stays forced
|
||||
// on until it clears WDRF — no activation window in its way.
|
||||
if (avr::hw::field_impl<wdrf_field()>::test())
|
||||
if (avr::power::peek_reset_cause().watchdog)
|
||||
run_app();
|
||||
|
||||
link::init();
|
||||
|
||||
@@ -20,17 +20,21 @@ if os.name == "nt":
|
||||
import ctypes
|
||||
from ctypes import wintypes
|
||||
else:
|
||||
import array
|
||||
import fcntl
|
||||
import select
|
||||
import termios
|
||||
|
||||
PROMPT = b"+"
|
||||
VERSION = 5 # this tool's own version — free to drift from a loader's
|
||||
# The loader versions this tool speaks. A pureboot version implies its wire
|
||||
VERSION = 6 # this tool's own version — free to drift from a loader's
|
||||
# The loader versions this tool can drive. A pureboot version implies its wire
|
||||
# protocol, which carries no number of its own, so this window is where that
|
||||
# map lives: every version so far speaks the same protocol, and one that
|
||||
# changes it becomes the new floor here.
|
||||
# map lives: the tool keeps a decoder for every generation in it (1–4 speak
|
||||
# the per-memory commands, 5 the unified pair; 6 marks the OSCCAL-carrying
|
||||
# builds and changes nothing on the wire), and a version it has no decoder
|
||||
# for moves the floor.
|
||||
OLDEST_LOADER = 1
|
||||
NEWEST_LOADER = 5
|
||||
NEWEST_LOADER = 6
|
||||
SLOT = 512 # the loader slot, on every chip
|
||||
RETRIES = 3 # rewrites of a page that reads back wrong, before the run stops
|
||||
|
||||
@@ -41,6 +45,13 @@ RETRIES = 3 # rewrites of a page that reads back wrong, before the run stops
|
||||
UNIFIED_LOADER = 5
|
||||
SP_FLASH, SP_EEPROM, SP_RAM, SP_FUSE, SP_SPM = 0, 1, 2, 3, 4
|
||||
|
||||
# A v5+ autobaud loader keeps its measured bit period at ram_start, encoded
|
||||
# as delay-loop counts: (bit cycles − UNIT_DISCOUNT) / UNIT_LOOP_CYCLES,
|
||||
# floored — the spin granule and per-bit overhead of libavr's software UART.
|
||||
# --info undoes the encoding to report the true clock, which therefore sits
|
||||
# within one granule below it.
|
||||
UNIT_LOOP_CYCLES, UNIT_DISCOUNT = 4, 8
|
||||
|
||||
# A selector's high nibble is the flash bank — the address bits above the 16-bit
|
||||
# wire address — so a transfer names a byte address within one 64 KiB bank and
|
||||
# no command has to speak word addresses. No single transfer may cross a bank
|
||||
@@ -66,31 +77,36 @@ CALIBRATE = 0xC0
|
||||
# from its chip database at build time). Die revisions that share a signature
|
||||
# share this row, as they share the silicon.
|
||||
CHIP_GEOMETRY = {
|
||||
# signature : (flash, page, eeprom, patch_vector)
|
||||
(0x1E, 0x90, 0x07): (1024, 32, 64, True), # ATtiny13/13A
|
||||
(0x1E, 0x91, 0x08): (2048, 32, 128, True), # ATtiny25
|
||||
(0x1E, 0x92, 0x06): (4096, 64, 256, True), # ATtiny45
|
||||
(0x1E, 0x93, 0x0B): (8192, 64, 512, True), # ATtiny85
|
||||
(0x1E, 0x92, 0x05): (4096, 64, 256, True), # ATmega48/48A
|
||||
(0x1E, 0x92, 0x0A): (4096, 64, 256, True), # ATmega48P/48PA
|
||||
(0x1E, 0x93, 0x07): (8192, 64, 512, False), # ATmega8/8A
|
||||
(0x1E, 0x93, 0x0A): (8192, 64, 512, False), # ATmega88/88A
|
||||
(0x1E, 0x93, 0x0F): (8192, 64, 512, False), # ATmega88P/88PA
|
||||
(0x1E, 0x94, 0x03): (16384, 128, 512, False), # ATmega16/16A
|
||||
(0x1E, 0x94, 0x06): (16384, 128, 512, False), # ATmega168/168A
|
||||
(0x1E, 0x94, 0x0B): (16384, 128, 512, False), # ATmega168P/168PA
|
||||
(0x1E, 0x94, 0x0A): (16384, 128, 512, False), # ATmega164P/164PA
|
||||
(0x1E, 0x94, 0x0F): (16384, 128, 512, False), # ATmega164A
|
||||
(0x1E, 0x95, 0x02): (32768, 128, 1024, False), # ATmega32/32A
|
||||
(0x1E, 0x95, 0x0F): (32768, 128, 1024, False), # ATmega328P
|
||||
(0x1E, 0x95, 0x14): (32768, 128, 1024, False), # ATmega328
|
||||
(0x1E, 0x95, 0x08): (32768, 128, 1024, False), # ATmega324P
|
||||
(0x1E, 0x95, 0x11): (32768, 128, 1024, False), # ATmega324PA
|
||||
(0x1E, 0x95, 0x15): (32768, 128, 1024, False), # ATmega324A
|
||||
(0x1E, 0x96, 0x09): (65536, 256, 2048, False), # ATmega644/644A
|
||||
(0x1E, 0x96, 0x0A): (65536, 256, 2048, False), # ATmega644P/644PA
|
||||
(0x1E, 0x97, 0x05): (131072, 256, 4096, False),# ATmega1284P
|
||||
(0x1E, 0x97, 0x06): (131072, 256, 4096, False),# ATmega1284
|
||||
# signature : (flash, page, eeprom, patch_vector, ram_start)
|
||||
# ram_start is where SRAM begins in data space: the classic megas and the
|
||||
# tinies keep it right after the plain I/O registers (0x60), the x8/x4
|
||||
# generations past their extended I/O file (0x100). An autobaud loader's
|
||||
# measured bit period lives at exactly ram_start (its only RAM object;
|
||||
# the loader's own build pins the layout), which is what --info reads.
|
||||
(0x1E, 0x90, 0x07): (1024, 32, 64, True, 0x60), # ATtiny13/13A
|
||||
(0x1E, 0x91, 0x08): (2048, 32, 128, True, 0x60), # ATtiny25
|
||||
(0x1E, 0x92, 0x06): (4096, 64, 256, True, 0x60), # ATtiny45
|
||||
(0x1E, 0x93, 0x0B): (8192, 64, 512, True, 0x60), # ATtiny85
|
||||
(0x1E, 0x92, 0x05): (4096, 64, 256, True, 0x100), # ATmega48/48A
|
||||
(0x1E, 0x92, 0x0A): (4096, 64, 256, True, 0x100), # ATmega48P/48PA
|
||||
(0x1E, 0x93, 0x07): (8192, 64, 512, False, 0x60), # ATmega8/8A
|
||||
(0x1E, 0x93, 0x0A): (8192, 64, 512, False, 0x100), # ATmega88/88A
|
||||
(0x1E, 0x93, 0x0F): (8192, 64, 512, False, 0x100), # ATmega88P/88PA
|
||||
(0x1E, 0x94, 0x03): (16384, 128, 512, False, 0x60), # ATmega16/16A
|
||||
(0x1E, 0x94, 0x06): (16384, 128, 512, False, 0x100), # ATmega168/168A
|
||||
(0x1E, 0x94, 0x0B): (16384, 128, 512, False, 0x100), # ATmega168P/168PA
|
||||
(0x1E, 0x94, 0x0A): (16384, 128, 512, False, 0x100), # ATmega164P/164PA
|
||||
(0x1E, 0x94, 0x0F): (16384, 128, 512, False, 0x100), # ATmega164A
|
||||
(0x1E, 0x95, 0x02): (32768, 128, 1024, False, 0x60), # ATmega32/32A
|
||||
(0x1E, 0x95, 0x0F): (32768, 128, 1024, False, 0x100), # ATmega328P
|
||||
(0x1E, 0x95, 0x14): (32768, 128, 1024, False, 0x100), # ATmega328
|
||||
(0x1E, 0x95, 0x08): (32768, 128, 1024, False, 0x100), # ATmega324P
|
||||
(0x1E, 0x95, 0x11): (32768, 128, 1024, False, 0x100), # ATmega324PA
|
||||
(0x1E, 0x95, 0x15): (32768, 128, 1024, False, 0x100), # ATmega324A
|
||||
(0x1E, 0x96, 0x09): (65536, 256, 2048, False, 0x100), # ATmega644/644A
|
||||
(0x1E, 0x96, 0x0A): (65536, 256, 2048, False, 0x100), # ATmega644P/644PA
|
||||
(0x1E, 0x97, 0x05): (131072, 256, 4096, False, 0x100),# ATmega1284P
|
||||
(0x1E, 0x97, 0x06): (131072, 256, 4096, False, 0x100),# ATmega1284
|
||||
}
|
||||
|
||||
VERBOSE = False
|
||||
@@ -144,36 +160,60 @@ class Progress:
|
||||
|
||||
|
||||
class PosixPort:
|
||||
"""A raw serial port with deadline-based reads, over termios."""
|
||||
"""A raw serial port with deadline-based reads, over termios. A rate with
|
||||
no B-constant — the off-nominal probes `--scan` walks — goes through
|
||||
Linux's termios2 BOTHER; a platform without that ioctl refuses the rate
|
||||
by name."""
|
||||
|
||||
# The termios2 ioctl pair and cflag bits, and the struct's ispeed/ospeed
|
||||
# word offsets: four flag words, then a line-discipline byte and 19
|
||||
# control chars padded to word 9 (include/uapi/asm-generic/termbits.h).
|
||||
_TCGETS2, _TCSETS2 = 0x802C542A, 0x402C542B
|
||||
_BOTHER, _CBAUD = 0o010000, 0o010017
|
||||
_ISPEED, _OSPEED = 9, 10
|
||||
|
||||
@staticmethod
|
||||
def _speed(baud):
|
||||
return getattr(termios, f"B{baud}", None)
|
||||
|
||||
def _set_arbitrary(self, baud):
|
||||
buf = array.array("i", [0] * (self._OSPEED + 1))
|
||||
try:
|
||||
return getattr(termios, f"B{baud}")
|
||||
except AttributeError:
|
||||
raise Error(f"unsupported baud rate {baud}") from None
|
||||
fcntl.ioctl(self.fd, self._TCGETS2, buf, True)
|
||||
buf[2] = (buf[2] & ~self._CBAUD) | self._BOTHER
|
||||
buf[self._ISPEED] = buf[self._OSPEED] = baud
|
||||
fcntl.ioctl(self.fd, self._TCSETS2, buf)
|
||||
except OSError:
|
||||
raise Error(f"this platform cannot set {baud} Bd (no termios2)") from None
|
||||
|
||||
def _apply_baud(self, attrs, baud):
|
||||
speed = self._speed(baud)
|
||||
attrs[4] = attrs[5] = speed if speed is not None else termios.B38400
|
||||
termios.tcsetattr(self.fd, termios.TCSANOW, attrs)
|
||||
if speed is None:
|
||||
self._set_arbitrary(baud)
|
||||
self.baud = baud
|
||||
|
||||
def __init__(self, path, baud):
|
||||
self.fd = os.open(path, os.O_RDWR | os.O_NOCTTY)
|
||||
try:
|
||||
attrs = termios.tcgetattr(self.fd)
|
||||
attrs[0] = 0 # iflag
|
||||
attrs[1] = 0 # oflag
|
||||
attrs[2] = termios.CREAD | termios.CLOCAL | termios.CS8 # cflag
|
||||
attrs[3] = 0 # lflag
|
||||
attrs[4] = attrs[5] = self._speed(baud)
|
||||
attrs[6][termios.VMIN] = 0
|
||||
attrs[6][termios.VTIME] = 0
|
||||
termios.tcsetattr(self.fd, termios.TCSANOW, attrs)
|
||||
self.baud = baud
|
||||
self._apply_baud(attrs, baud)
|
||||
except BaseException:
|
||||
os.close(self.fd)
|
||||
raise
|
||||
|
||||
def set_baud(self, baud):
|
||||
"""Retune the port without closing it — the fd stays open, so no DTR
|
||||
pulse and no reset. That matters: the only caller is mid-session with a
|
||||
loader copy that a reset would throw away."""
|
||||
attrs = termios.tcgetattr(self.fd)
|
||||
attrs[4] = attrs[5] = self._speed(baud)
|
||||
termios.tcsetattr(self.fd, termios.TCSANOW, attrs)
|
||||
self.baud = baud
|
||||
self._apply_baud(termios.tcgetattr(self.fd), baud)
|
||||
|
||||
def close(self):
|
||||
os.close(self.fd)
|
||||
@@ -410,7 +450,7 @@ class Info:
|
||||
if geometry is None:
|
||||
sig = " ".join(f"{b:02x}" for b in signature)
|
||||
raise Error(f"unknown signature {sig} — this tool has no geometry for it")
|
||||
flash, page, eeprom, patch = geometry
|
||||
flash, page, eeprom, patch, _ = geometry
|
||||
base = flash - SLOT
|
||||
word_flash = flash > 0x10000
|
||||
wire_base = base // 2 if word_flash else base
|
||||
@@ -446,6 +486,11 @@ class Info:
|
||||
# The hand-over target as 'J' takes it: the trampoline below the
|
||||
# loader, or word 0 where BOOTRST re-vectors reset in hardware.
|
||||
self.app_entry_word = (self.base - 2) // 2 if self.patch_vector else 0
|
||||
# Where SRAM begins, from the signature — None only for a chip this
|
||||
# tool has no geometry row for, which the wire-block path (v1–4)
|
||||
# permits where from_identity refuses.
|
||||
geometry = CHIP_GEOMETRY.get(tuple(self.signature))
|
||||
self.ram = geometry[4] if geometry else None
|
||||
|
||||
def describe(self):
|
||||
sig = " ".join(f"{b:02x}" for b in self.signature)
|
||||
@@ -512,6 +557,7 @@ class Loader:
|
||||
drain absorbs whatever they produced."""
|
||||
deadline = time.monotonic() + wait
|
||||
knocks = 0
|
||||
refusal = None
|
||||
while True:
|
||||
self.port.flush_input()
|
||||
self.port.write(knock)
|
||||
@@ -533,12 +579,18 @@ class Loader:
|
||||
except Error as failed:
|
||||
if "pureboot" in str(failed):
|
||||
raise
|
||||
# A malformed or unknown identity is retried as noise, but
|
||||
# it was an answer: if nothing better ever arrives, naming
|
||||
# it beats reporting silence.
|
||||
refusal = failed
|
||||
self.info = None
|
||||
if self.info is not None:
|
||||
self._expect_prompt()
|
||||
verbose(f"loader answered {what} {knocks}; identity read")
|
||||
return self.info
|
||||
if time.monotonic() > deadline:
|
||||
if refusal is not None:
|
||||
raise Error(f"no usable answer — the last identity reply failed: {refusal}")
|
||||
raise Error("no answer — reset the device within its activation window")
|
||||
|
||||
def connect(self, wait):
|
||||
@@ -1351,6 +1403,62 @@ def op_fuses(loader):
|
||||
return fuse_bytes
|
||||
|
||||
|
||||
def scan_ratios():
|
||||
"""The probe walk, in percent of the built rate: the built rate itself
|
||||
first, then ±10 % in 2 % steps nearest-first — a drifted oscillator near
|
||||
its trim is the common case, and each probe costs a reset."""
|
||||
return [0] + [sign * step for step in (2, 4, 6, 8, 10) for sign in (-1, 1)]
|
||||
|
||||
|
||||
def scan_rate(baud, pct):
|
||||
return round(baud * (100 + pct) / 100)
|
||||
|
||||
|
||||
def scan_report(baud, pct, version, clock=None):
|
||||
"""The findings, one per line: the found rate is the session workaround,
|
||||
its ratio to the built rate is the oscillator's offset, and the fixes are
|
||||
the OSCCAL bake (≈1 %/step, opposing the drift) or the autobaud build."""
|
||||
rate = scan_rate(baud, pct)
|
||||
lines = [f"scan: answered at {rate} Bd ({pct:+d} % of the built rate) — pureboot {version}",
|
||||
f" session --baud {rate}"]
|
||||
if clock:
|
||||
lines.append(f" clock ~{clock * (100 + pct) // 100} Hz (built for {clock})")
|
||||
if pct:
|
||||
direction = "lower" if pct > 0 else "higher"
|
||||
lines.append(f" fix rebuild with OSCCAL ~{abs(pct)} steps {direction} (~1 %/step), "
|
||||
"or the autobaud build")
|
||||
else:
|
||||
lines.append(" fix none — the built rate answers; check the earlier wiring instead")
|
||||
return lines
|
||||
|
||||
|
||||
def op_scan(port_path, baud, wait, clock=None):
|
||||
"""A fixed-baud loader whose oscillator drifted still answers — at the
|
||||
drifted ratio, since its rate scales with its clock. One probe per
|
||||
activation window, and with an application resident the window opens
|
||||
exactly once per reset, so each probe announces itself and expects a
|
||||
fresh reset before knocking."""
|
||||
for pct in scan_ratios():
|
||||
rate = scan_rate(baud, pct)
|
||||
print(f"scan: {rate} Bd ({pct:+d} %) — reset the target", flush=True)
|
||||
try:
|
||||
port = Port(port_path, rate)
|
||||
except Error as unmakeable:
|
||||
print(f"scan: {rate} Bd skipped — {unmakeable}")
|
||||
continue
|
||||
try:
|
||||
info = Loader(port).connect(wait)
|
||||
except Error:
|
||||
continue
|
||||
finally:
|
||||
port.close()
|
||||
for line in scan_report(baud, pct, info.version, clock):
|
||||
print(line)
|
||||
return
|
||||
raise Error("no answer within ±10 % of the built rate — check the wiring, or deploy the "
|
||||
"autobaud build, which has no rate to miss (README.md)")
|
||||
|
||||
|
||||
# -------------------------------------------------------------------- cli ---
|
||||
|
||||
|
||||
@@ -1366,6 +1474,12 @@ def main():
|
||||
parser.add_argument("--autobaud", action="store_true",
|
||||
help="drive an autobaud loader: send the 0xC0 calibration pulse and a single "
|
||||
"knock, and take geometry from the signature (no clock/baud baked in)")
|
||||
parser.add_argument("--scan", action="store_true",
|
||||
help="walk ±10%% around --baud for a fixed-baud loader gone silent — one "
|
||||
"reset per probe, standalone (README.md: deployment)")
|
||||
parser.add_argument("--clock", type=int, metavar="HZ",
|
||||
help="the clock the loader was built for — lets --scan and an autobaud "
|
||||
"--info state drift in absolute terms")
|
||||
parser.add_argument("--info", action="store_true", help="print the device info block")
|
||||
parser.add_argument("--fuses", action="store_true", help="read the fuse and lock bytes")
|
||||
parser.add_argument("--update-loader", metavar="FILE", help="replace the loader with this pureboot binary")
|
||||
@@ -1412,6 +1526,12 @@ def main():
|
||||
except (ValueError, AssertionError):
|
||||
parser.error("--assume-fuses takes 8 hex digits: low,lock,extended,high")
|
||||
|
||||
if args.scan:
|
||||
if args.autobaud:
|
||||
parser.error("--scan probes fixed rates; an autobaud loader has none to miss")
|
||||
op_scan(args.port, args.baud, args.wait, args.clock)
|
||||
return
|
||||
|
||||
port = Port(args.port, args.baud)
|
||||
verbose(f"{args.port}: {args.baud} Bd 8N1, DTR/RTS asserted")
|
||||
try:
|
||||
@@ -1421,6 +1541,18 @@ def main():
|
||||
print("device:")
|
||||
for line in info.lines():
|
||||
print(f" {line}")
|
||||
if args.autobaud and info.ram is not None:
|
||||
# The whole of the loader's RAM is the measured bit period at
|
||||
# ram_start; decoded and times the rate this session drives,
|
||||
# that is the true clock — the number to hold an OSCCAL bake
|
||||
# or a fixed-baud build against (README.md: deployment). The
|
||||
# autobaud identity path refuses unknown signatures, so ram is
|
||||
# always known here; the guard states that dependency.
|
||||
unit = int.from_bytes(loader.read_ram(info.ram, 2), "little")
|
||||
cycles = unit * UNIT_LOOP_CYCLES + UNIT_DISCOUNT
|
||||
clock = cycles * args.baud
|
||||
offset = f", {(clock / args.clock - 1) * 100:+.1f} % of {args.clock}" if args.clock else ""
|
||||
print(f" measured {clock} Hz ({cycles} cycles/bit × {args.baud} Bd{offset})")
|
||||
fuse_bytes = fuse_override
|
||||
if args.fuses or (args.update_loader and not info.patch_vector and fuse_bytes is None):
|
||||
read = op_fuses(loader)
|
||||
@@ -1468,7 +1600,7 @@ def main():
|
||||
if __name__ == "__main__":
|
||||
try:
|
||||
main()
|
||||
except Error as error:
|
||||
except (Error, OSError) as error:
|
||||
print(f"error: {error}", file=sys.stderr)
|
||||
sys.exit(1)
|
||||
except KeyboardInterrupt:
|
||||
|
||||
23
test/check_unit.cmake
Normal file
23
test/check_unit.cmake
Normal file
@@ -0,0 +1,23 @@
|
||||
# Asserts the autobaud loader's measured unit is the first RAM object: the
|
||||
# host tool reads the bit period from ram_start (--info's measured clock), so
|
||||
# the unit's address is wire contract. Run as
|
||||
# cmake -DOBJDUMP=... -DELF=... -DRAM_START=<data address> -P check_unit.cmake
|
||||
|
||||
execute_process(COMMAND ${OBJDUMP} -t ${ELF} OUTPUT_VARIABLE _syms RESULT_VARIABLE _res)
|
||||
if(NOT _res EQUAL 0)
|
||||
message(FATAL_ERROR "${OBJDUMP} -t ${ELF} failed")
|
||||
endif()
|
||||
|
||||
# The symbol line: "00800100 l O .noinit 00000002 <mangled>unit_E".
|
||||
string(REGEX MATCH "\n0*([0-9a-f]+)[^\n]+[ \t][^ \t\n]*unit_[^ \t\n]*\n" _line "${_syms}")
|
||||
if(NOT _line)
|
||||
message(FATAL_ERROR "no unit_ symbol in ${ELF} — is this the autobaud loader?")
|
||||
endif()
|
||||
|
||||
# AVR data-space symbols carry the 0x800000 VMA offset.
|
||||
math(EXPR _want "0x800000 + ${RAM_START}" OUTPUT_FORMAT HEXADECIMAL)
|
||||
math(EXPR _have "0x${CMAKE_MATCH_1}" OUTPUT_FORMAT HEXADECIMAL)
|
||||
if(NOT _have STREQUAL _want)
|
||||
message(FATAL_ERROR "unit_ sits at ${_have}, ram_start is ${_want} — the host peeks ram_start")
|
||||
endif()
|
||||
message(STATUS "unit_ at ${_have} == ram_start")
|
||||
@@ -7,62 +7,71 @@
|
||||
// SPM genuinely writes avr->flash on the mega cores, so on exit (or SIGTERM)
|
||||
// we dump the flash image to a file for a ground-truth cross-check against
|
||||
// what the client read back through the bootloader.
|
||||
#include <signal.h>
|
||||
#include <stdint.h>
|
||||
#include <stdio.h>
|
||||
#include <stdlib.h>
|
||||
#include <string.h>
|
||||
#include <csignal>
|
||||
#include <cstdint>
|
||||
#include <cstdio>
|
||||
#include <cstdlib>
|
||||
#include <cstring>
|
||||
#include <print>
|
||||
|
||||
#include <unistd.h>
|
||||
|
||||
// The parts headers (uart_pty.h) carry no C++ linkage guards of their own,
|
||||
// unlike simavr's core headers — the block covers both harmlessly.
|
||||
extern "C" {
|
||||
#include "avr_uart.h"
|
||||
#include "sim_avr.h"
|
||||
#include "sim_elf.h"
|
||||
#include "uart_pty.h"
|
||||
}
|
||||
|
||||
static avr_t *avr;
|
||||
static uart_pty_t uart_pty;
|
||||
static const char *dump_path;
|
||||
namespace {
|
||||
|
||||
static void finish(int sig)
|
||||
avr_t *avr;
|
||||
uart_pty_t uart_pty;
|
||||
const char *dump_path;
|
||||
|
||||
[[noreturn]] void finish(int)
|
||||
{
|
||||
(void)sig;
|
||||
if (dump_path) {
|
||||
FILE *f = fopen(dump_path, "wb");
|
||||
std::FILE *f = std::fopen(dump_path, "wb");
|
||||
if (f) {
|
||||
fwrite(avr->flash, 1, avr->flashend + 1, f);
|
||||
fclose(f);
|
||||
std::fwrite(avr->flash, 1, avr->flashend + 1, f);
|
||||
std::fclose(f);
|
||||
}
|
||||
}
|
||||
uart_pty_stop(&uart_pty);
|
||||
_exit(0);
|
||||
}
|
||||
|
||||
} // namespace
|
||||
|
||||
int main(int argc, char *argv[])
|
||||
{
|
||||
if (argc < 3) {
|
||||
fprintf(stderr, "usage: %s <tsb.elf> <boot_base_hex> [flash_dump.bin]\n", argv[0]);
|
||||
std::println(stderr, "usage: {} <tsb.elf> <boot_base_hex> [flash_dump.bin]", argv[0]);
|
||||
return 2;
|
||||
}
|
||||
uint32_t boot_base = (uint32_t)strtoul(argv[2], NULL, 0);
|
||||
dump_path = argc >= 4 ? argv[3] : NULL;
|
||||
auto boot_base = static_cast<std::uint32_t>(std::strtoul(argv[2], nullptr, 0));
|
||||
dump_path = argc >= 4 ? argv[3] : nullptr;
|
||||
|
||||
avr = avr_make_mcu_by_name("atmega328p");
|
||||
if (!avr) {
|
||||
fprintf(stderr, "device: no ATmega328P core\n");
|
||||
std::println(stderr, "device: no ATmega328P core");
|
||||
return 1;
|
||||
}
|
||||
avr_init(avr);
|
||||
avr->frequency = 16000000;
|
||||
// Real flash powers up erased (0xff); the app region must look erased
|
||||
// before the bootloader programs it.
|
||||
memset(avr->flash, 0xff, avr->flashend + 1);
|
||||
std::memset(avr->flash, 0xff, avr->flashend + 1);
|
||||
|
||||
// simavr's ELF loader flattens the flash base to 0 (it expects an app at
|
||||
// 0x0), but it hands back the boot code in fw.flash; place it at the boot
|
||||
// section base ourselves and enter there (BOOTRST is not modelled).
|
||||
elf_firmware_t fw = {0};
|
||||
elf_firmware_t fw{};
|
||||
if (elf_read_firmware(argv[1], &fw) != 0) {
|
||||
fprintf(stderr, "device: cannot read %s\n", argv[1]);
|
||||
std::println(stderr, "device: cannot read {}", argv[1]);
|
||||
return 1;
|
||||
}
|
||||
// An image that runs past flash end cannot execute on hardware, and a
|
||||
@@ -70,23 +79,23 @@ int main(int argc, char *argv[])
|
||||
// the simulation misbehaves in ways that point everywhere but here.
|
||||
// Refuse it loudly instead.
|
||||
if (boot_base + fw.flashsize > avr->flashend + 1) {
|
||||
fprintf(stderr, "device: %u B at 0x%x runs past flash end 0x%x — image does not fit its slot\n",
|
||||
(unsigned)fw.flashsize, boot_base, avr->flashend);
|
||||
std::println(stderr, "device: {} B at {:#x} runs past flash end {:#x} — image does not fit its slot",
|
||||
fw.flashsize, boot_base, avr->flashend);
|
||||
return 1;
|
||||
}
|
||||
memcpy(avr->flash + boot_base, fw.flash, fw.flashsize);
|
||||
std::memcpy(avr->flash + boot_base, fw.flash, fw.flashsize);
|
||||
avr->pc = boot_base;
|
||||
avr->codeend = avr->flashend;
|
||||
|
||||
// Optional: seed the config page (one page below the boot section) with a
|
||||
// hex byte string, so the password gate and emergency erase can be tested.
|
||||
// Layout: [appjump lo][appjump hi][timeout][password...][0xff].
|
||||
const char *cfg = getenv("TSB_CONFIG");
|
||||
const char *cfg = std::getenv("TSB_CONFIG");
|
||||
if (cfg) {
|
||||
uint32_t app_end = boot_base - 128; // config page sits directly below the boot code
|
||||
std::uint32_t app_end = boot_base - 128; // config page sits directly below the boot code
|
||||
for (int i = 0; cfg[i] && cfg[i + 1]; i += 2) {
|
||||
char b[3] = {cfg[i], cfg[i + 1], 0};
|
||||
avr->flash[app_end + i / 2] = (uint8_t)strtoul(b, NULL, 16);
|
||||
avr->flash[app_end + i / 2] = static_cast<std::uint8_t>(std::strtoul(b, nullptr, 16));
|
||||
}
|
||||
}
|
||||
|
||||
@@ -95,18 +104,18 @@ int main(int argc, char *argv[])
|
||||
// tight-polling loader (one that releases TX between bytes, as one-wire does)
|
||||
// in real time, distorting protocol timing. Clear it so the loader runs at
|
||||
// true cycle speed.
|
||||
uint32_t uflags = 0;
|
||||
std::uint32_t uflags = 0;
|
||||
avr_ioctl(avr, AVR_IOCTL_UART_GET_FLAGS('0'), &uflags);
|
||||
uflags &= ~AVR_UART_FLAG_POLL_SLEEP;
|
||||
avr_ioctl(avr, AVR_IOCTL_UART_SET_FLAGS('0'), &uflags);
|
||||
|
||||
uart_pty_init(avr, &uart_pty);
|
||||
uart_pty_connect(&uart_pty, '0');
|
||||
printf("TSB_PTY %s\n", uart_pty.pty.slavename);
|
||||
fflush(stdout);
|
||||
std::println("TSB_PTY {}", uart_pty.pty.slavename);
|
||||
std::fflush(stdout);
|
||||
|
||||
signal(SIGTERM, finish);
|
||||
signal(SIGINT, finish);
|
||||
std::signal(SIGTERM, finish);
|
||||
std::signal(SIGINT, finish);
|
||||
|
||||
for (;;) {
|
||||
int state = avr_run(avr);
|
||||
@@ -114,5 +123,4 @@ int main(int argc, char *argv[])
|
||||
break;
|
||||
}
|
||||
finish(0);
|
||||
return 0;
|
||||
}
|
||||
@@ -16,6 +16,7 @@ baked in.
|
||||
"""
|
||||
|
||||
import os
|
||||
import re
|
||||
import sys
|
||||
import time
|
||||
|
||||
@@ -58,11 +59,23 @@ def main():
|
||||
try:
|
||||
# The host tool, in autobaud mode, sends the 0xC0 calibration pulse
|
||||
# and a single knock at `baud`; the loader locks to it.
|
||||
out = pbsim.run_tool(tool, device.pty, baud, "--autobaud", "--info", "--fuses",
|
||||
"--flash", app_bin, "--eeprom", ee_path, "--stay")
|
||||
out = pbsim.run_tool(tool, device.pty, baud, "--autobaud", "--info", "--clock", str(hz),
|
||||
"--fuses", "--flash", app_bin, "--eeprom", ee_path, "--stay")
|
||||
for needed in ("version", "signature", "fuses", "verify:", "stays"):
|
||||
if needed not in out:
|
||||
fail(f"{label}: session output lacks {needed!r}\n{out}")
|
||||
# The measured clock, decoded from the unit at ram_start. The
|
||||
# runner's clock is exact, so the figure must land inside the
|
||||
# encoding's own envelope: the loader floors the bit period to
|
||||
# 4-cycle spin granules after an 8-cycle discount, and the edge
|
||||
# poll can shave a few cycles more — one granule of slack below
|
||||
# the true clock, none above (in cycles per bit, times the rate).
|
||||
measured = re.search(r"measured\s+(\d+) Hz", out)
|
||||
if not measured:
|
||||
fail(f"{label}: --info lacks the measured clock\n{out}")
|
||||
measured = int(measured.group(1))
|
||||
if not hz - 19 * baud <= measured <= hz + 4 * baud:
|
||||
fail(f"{label}: measured clock {measured} Hz is {measured - hz:+d} off the true {hz}")
|
||||
# Read both memories back over the locked link and check them.
|
||||
read_flash = os.path.join(workdir, f"rf_{label}.bin")
|
||||
read_eeprom = os.path.join(workdir, f"re_{label}.bin")
|
||||
|
||||
@@ -10,7 +10,7 @@ The state is reached the way silicon reaches it — an application that sets up
|
||||
its USART and jumps in with no reset between, so nothing clears UCSRnB for it.
|
||||
The pin ownership itself is modelled by the device runner: simavr wires a
|
||||
USART through IRQs alone and never takes the pin from the port, so without
|
||||
that the mute could not happen here at all (test/pureboot_device.c).
|
||||
that the mute could not happen here at all (test/pureboot_device.cpp).
|
||||
|
||||
Usage: pbmute.py <device_bin> <pureboot_elf> <mcu> <hz> <base_hex> <page>
|
||||
<baud> <app_bin> <tool_py> <workdir> <link>
|
||||
|
||||
46
test/pbosccal.py
Normal file
46
test/pbosccal.py
Normal file
@@ -0,0 +1,46 @@
|
||||
#!/usr/bin/env python3
|
||||
"""The build-time OSCCAL trim, observed through the wire: a loader built with
|
||||
the OSCCAL axis holds the trim register at the built byte from its first
|
||||
prompt on — the write sits at the top of run(), ahead of the WDRF bail, so
|
||||
every path out of reset runs on the corrected clock. simavr's clock does not
|
||||
follow OSCCAL, which is what makes the value assertable at all: the register
|
||||
is plain state there, and the peek must return exactly what the build
|
||||
declared rather than whatever the oscillator needed.
|
||||
|
||||
Usage: pbosccal.py <device_bin> <pureboot_elf> <mcu> <hz> <base_hex> <page>
|
||||
<baud> <osccal_addr> <osccal_value> <tool_py> <workdir>
|
||||
[link]
|
||||
"""
|
||||
|
||||
import os
|
||||
import sys
|
||||
|
||||
|
||||
def fail(message):
|
||||
print(f"FAIL: {message}")
|
||||
sys.exit(1)
|
||||
|
||||
|
||||
def main():
|
||||
args = sys.argv[1:]
|
||||
link = args.pop() if len(args) == 12 else None
|
||||
(device_bin, elf, mcu, hz, base_hex, page, baud, addr, value, tool, workdir) = args
|
||||
addr, value, baud = int(addr, 0), int(value, 0), int(baud)
|
||||
sys.path.insert(0, os.path.dirname(os.path.abspath(__file__)))
|
||||
import pbsim
|
||||
|
||||
os.makedirs(workdir, exist_ok=True)
|
||||
dump = os.path.join(workdir, "flash_dump.bin")
|
||||
device = pbsim.Device(device_bin, elf, mcu, hz, base_hex, page, baud, dump, link=link)
|
||||
try:
|
||||
out = pbsim.run_tool(tool, device.pty, baud, "--peek", f"{addr:#x}:1")
|
||||
want = f"{addr:#06x} {value:02x}"
|
||||
if want not in out:
|
||||
fail(f"OSCCAL at {addr:#x} did not read back {value:#04x}:\n{out}")
|
||||
finally:
|
||||
device.stop()
|
||||
print("OK")
|
||||
|
||||
|
||||
if __name__ == "__main__":
|
||||
main()
|
||||
@@ -23,16 +23,22 @@
|
||||
//
|
||||
// On exit (or SIGTERM) the flash and EEPROM are dumped to files for a
|
||||
// ground-truth cross-check against what the host read back.
|
||||
#include <csignal>
|
||||
#include <cstdint>
|
||||
#include <cstdio>
|
||||
#include <cstdlib>
|
||||
#include <cstring>
|
||||
#include <print>
|
||||
#include <string_view>
|
||||
|
||||
#include <fcntl.h>
|
||||
#include <pty.h>
|
||||
#include <signal.h>
|
||||
#include <stdint.h>
|
||||
#include <stdio.h>
|
||||
#include <stdlib.h>
|
||||
#include <string.h>
|
||||
#include <termios.h>
|
||||
#include <unistd.h>
|
||||
|
||||
// The parts headers (uart_pty.h) carry no C++ linkage guards of their own,
|
||||
// unlike simavr's core headers — the block covers both harmlessly.
|
||||
extern "C" {
|
||||
#include "avr_eeprom.h"
|
||||
#include "avr_flash.h"
|
||||
#include "avr_ioport.h"
|
||||
@@ -41,31 +47,35 @@
|
||||
#include "sim_elf.h"
|
||||
#include "sim_io.h"
|
||||
#include "uart_pty.h"
|
||||
}
|
||||
|
||||
static avr_t *avr;
|
||||
static uart_pty_t uart_pty;
|
||||
static int link_software;
|
||||
static char uart_digit = '0';
|
||||
static char sw_rx_port = 'B', sw_tx_port = 'B';
|
||||
static int sw_rx_bit = 0, sw_tx_bit = 1;
|
||||
static char sw_tx_owner = 0; // the USART whose TXD the software link sits on
|
||||
static const char *dump_path;
|
||||
static uint32_t reset_pc;
|
||||
static volatile sig_atomic_t reset_requested;
|
||||
namespace {
|
||||
|
||||
static int parse_link(const char *spec)
|
||||
avr_t *avr;
|
||||
uart_pty_t uart_pty;
|
||||
bool link_software;
|
||||
char uart_digit = '0';
|
||||
char sw_rx_port = 'B', sw_tx_port = 'B';
|
||||
int sw_rx_bit = 0, sw_tx_bit = 1;
|
||||
char sw_tx_owner = 0; // the USART whose TXD the software link sits on
|
||||
const char *dump_path;
|
||||
std::uint32_t reset_pc;
|
||||
volatile std::sig_atomic_t reset_requested;
|
||||
|
||||
int parse_link(std::string_view spec)
|
||||
{
|
||||
if (strcmp(spec, "usart0") == 0 || strcmp(spec, "usart1") == 0) {
|
||||
link_software = 0;
|
||||
if (spec == "usart0" || spec == "usart1") {
|
||||
link_software = false;
|
||||
uart_digit = spec[5];
|
||||
return 0;
|
||||
}
|
||||
if (strncmp(spec, "sw", 2) == 0) {
|
||||
link_software = 1;
|
||||
if (spec[2] == '\0')
|
||||
if (spec.starts_with("sw")) {
|
||||
link_software = true;
|
||||
if (spec.size() == 2)
|
||||
return 0;
|
||||
char owner = 0;
|
||||
int fields = sscanf(spec + 2, ":%c%d,%c%d@%c", &sw_rx_port, &sw_rx_bit, &sw_tx_port, &sw_tx_bit, &owner);
|
||||
int fields =
|
||||
std::sscanf(spec.data() + 2, ":%c%d,%c%d@%c", &sw_rx_port, &sw_rx_bit, &sw_tx_port, &sw_tx_bit, &owner);
|
||||
if (fields == 4 || fields == 5) {
|
||||
sw_tx_owner = owner;
|
||||
return 0;
|
||||
@@ -87,19 +97,19 @@ static int parse_link(const char *spec)
|
||||
// core — so the discard store falls through into the buffer-fill branch and
|
||||
// plants whatever Z/R1:R0 happen to hold. Perform the silicon's discard
|
||||
// here instead.
|
||||
static avr_flash_t *mega_flash;
|
||||
static int (*mega_flash_ioctl)(avr_io_t *io, uint32_t ctl, void *param);
|
||||
avr_flash_t *mega_flash;
|
||||
int (*mega_flash_ioctl)(avr_io_t *io, std::uint32_t ctl, void *param);
|
||||
|
||||
static int fixed_flash_ioctl(avr_io_t *io, uint32_t ctl, void *param)
|
||||
int fixed_flash_ioctl(avr_io_t *io, std::uint32_t ctl, void *param)
|
||||
{
|
||||
if (ctl == AVR_IOCTL_FLASH_SPM && avr_regbit_get(io->avr, mega_flash->pgers)) {
|
||||
uint16_t z = (uint16_t)(io->avr->data[30] | (io->avr->data[31] << 8));
|
||||
uint16_t masked = (uint16_t)(z & ~(mega_flash->spm_pagesize - 1));
|
||||
io->avr->data[30] = (uint8_t)masked;
|
||||
io->avr->data[31] = (uint8_t)(masked >> 8);
|
||||
auto z = static_cast<std::uint16_t>(io->avr->data[30] | (io->avr->data[31] << 8));
|
||||
auto masked = static_cast<std::uint16_t>(z & ~(mega_flash->spm_pagesize - 1));
|
||||
io->avr->data[30] = static_cast<std::uint8_t>(masked);
|
||||
io->avr->data[31] = static_cast<std::uint8_t>(masked >> 8);
|
||||
int result = mega_flash_ioctl(io, ctl, param);
|
||||
io->avr->data[30] = (uint8_t)z;
|
||||
io->avr->data[31] = (uint8_t)(z >> 8);
|
||||
io->avr->data[30] = static_cast<std::uint8_t>(z);
|
||||
io->avr->data[31] = static_cast<std::uint8_t>(z >> 8);
|
||||
return result;
|
||||
}
|
||||
if (ctl == AVR_IOCTL_FLASH_SPM && !(mega_flash->flags & AVR_SELFPROG_HAVE_RWW) &&
|
||||
@@ -114,46 +124,44 @@ static int fixed_flash_ioctl(avr_io_t *io, uint32_t ctl, void *param)
|
||||
return mega_flash_ioctl(io, ctl, param);
|
||||
}
|
||||
|
||||
static void fix_mega_flash_erase(void)
|
||||
void fix_mega_flash_erase()
|
||||
{
|
||||
for (avr_io_t *io = avr->io_port; io; io = io->next) {
|
||||
if (io->kind && strcmp(io->kind, "flash") == 0) {
|
||||
mega_flash = (avr_flash_t *)io;
|
||||
if (io->kind && std::string_view{io->kind} == "flash") {
|
||||
mega_flash = reinterpret_cast<avr_flash_t *>(io);
|
||||
mega_flash_ioctl = io->ioctl;
|
||||
io->ioctl = fixed_flash_ioctl;
|
||||
return;
|
||||
}
|
||||
}
|
||||
fprintf(stderr, "device: no flash module to fix — SPM page erases may misalign\n");
|
||||
std::println(stderr, "device: no flash module to fix — SPM page erases may misalign");
|
||||
}
|
||||
|
||||
static void request_reset(int sig)
|
||||
void request_reset(int)
|
||||
{
|
||||
(void)sig;
|
||||
reset_requested = 1;
|
||||
}
|
||||
|
||||
// ------------------------------------------------------------- tiny NVM ---
|
||||
|
||||
typedef struct {
|
||||
struct tiny_nvm_t {
|
||||
avr_io_t io;
|
||||
uint8_t buffer[128];
|
||||
uint8_t used[128]; // a buffer word loads once until erased — like silicon
|
||||
std::uint8_t buffer[128];
|
||||
std::uint8_t used[128]; // a buffer word loads once until erased — like silicon
|
||||
unsigned page;
|
||||
} tiny_nvm_t;
|
||||
};
|
||||
|
||||
static tiny_nvm_t nvm;
|
||||
tiny_nvm_t nvm;
|
||||
|
||||
static int nvm_ioctl(avr_io_t *io, uint32_t ctl, void *param)
|
||||
int nvm_ioctl(avr_io_t *io, std::uint32_t ctl, void *)
|
||||
{
|
||||
(void)param;
|
||||
if (ctl != AVR_IOCTL_FLASH_SPM)
|
||||
return -1;
|
||||
tiny_nvm_t *n = (tiny_nvm_t *)io;
|
||||
auto *n = reinterpret_cast<tiny_nvm_t *>(io);
|
||||
avr_t *mcu = io->avr;
|
||||
uint8_t command = mcu->data[0x57] & 0x1f; // SPMCSR, both tinies
|
||||
uint16_t z = (uint16_t)(mcu->data[30] | (mcu->data[31] << 8));
|
||||
uint32_t page_base = (uint32_t)(z & ~(n->page - 1)) % (mcu->flashend + 1);
|
||||
std::uint8_t command = mcu->data[0x57] & 0x1f; // SPMCSR, both tinies
|
||||
auto z = static_cast<std::uint16_t>(mcu->data[30] | (mcu->data[31] << 8));
|
||||
std::uint32_t page_base = static_cast<std::uint32_t>(z & ~(n->page - 1)) % (mcu->flashend + 1);
|
||||
if (command == 0x01) { // SPMEN alone: buffer fill from r1:r0
|
||||
unsigned offset = z & (n->page - 1) & ~1u;
|
||||
if (!n->used[offset]) { // first write wins until the buffer clears
|
||||
@@ -162,45 +170,44 @@ static int nvm_ioctl(avr_io_t *io, uint32_t ctl, void *param)
|
||||
n->used[offset] = 1;
|
||||
}
|
||||
} else if (command == 0x03) { // PGERS
|
||||
memset(mcu->flash + page_base, 0xff, n->page);
|
||||
std::memset(mcu->flash + page_base, 0xff, n->page);
|
||||
} else if (command == 0x05) { // PGWRT: programming only clears bits
|
||||
for (unsigned i = 0; i < n->page; i++)
|
||||
mcu->flash[page_base + i] &= n->buffer[i];
|
||||
memset(n->buffer, 0xff, n->page);
|
||||
memset(n->used, 0, n->page);
|
||||
std::memset(n->buffer, 0xff, n->page);
|
||||
std::memset(n->used, 0, n->page);
|
||||
} else if (command == 0x11) { // CTPB
|
||||
memset(n->buffer, 0xff, n->page);
|
||||
memset(n->used, 0, n->page);
|
||||
std::memset(n->buffer, 0xff, n->page);
|
||||
std::memset(n->used, 0, n->page);
|
||||
}
|
||||
mcu->data[0x57] &= (uint8_t)~0x1f; // the operation completes instantly
|
||||
mcu->data[0x57] &= static_cast<std::uint8_t>(~0x1f); // the operation completes instantly
|
||||
return 0;
|
||||
}
|
||||
|
||||
// ----------------------------------------------------------- GPIO bridge ---
|
||||
|
||||
static int pty_master = -1;
|
||||
static avr_irq_t *rx_pin; // the loader's RX (PB0), driven from the pty
|
||||
static avr_cycle_count_t bit_cycles;
|
||||
int pty_master = -1;
|
||||
avr_irq_t *rx_pin; // the loader's RX (PB0), driven from the pty
|
||||
avr_cycle_count_t bit_cycles;
|
||||
|
||||
static int tx_level = 1, tx_active, tx_bit;
|
||||
static uint8_t tx_shift;
|
||||
int tx_level = 1, tx_active, tx_bit;
|
||||
std::uint8_t tx_shift;
|
||||
|
||||
static avr_cycle_count_t tx_sample(avr_t *mcu, avr_cycle_count_t when, void *param)
|
||||
avr_cycle_count_t tx_sample(avr_t *, avr_cycle_count_t when, void *)
|
||||
{
|
||||
(void)mcu;
|
||||
(void)param;
|
||||
if (tx_bit < 8) {
|
||||
tx_shift = (uint8_t)((tx_shift >> 1) | (tx_level ? 0x80 : 0));
|
||||
tx_shift = static_cast<std::uint8_t>((tx_shift >> 1) | (tx_level ? 0x80 : 0));
|
||||
if (++tx_bit < 8)
|
||||
return when + bit_cycles;
|
||||
/* The byte is not delivered until its stop bit has passed. A real
|
||||
* receiver cannot answer sooner, and a host that did would put its
|
||||
* start bit on the wire while the device is still driving the stop
|
||||
* bit — which the device, transmitting, is not watching for. */
|
||||
// The byte is delivered at the stop bit's sampling point (9.5 bit
|
||||
// times), where a hardware receiver raises its RXC — not sooner: a
|
||||
// host answering before the stop bit would put its start bit on the
|
||||
// wire while the device is still driving, which the device,
|
||||
// transmitting, is not watching for.
|
||||
return when + bit_cycles;
|
||||
}
|
||||
if (write(pty_master, &tx_shift, 1) != 1)
|
||||
fprintf(stderr, "device: pty write lost a byte\n");
|
||||
std::println(stderr, "device: pty write lost a byte");
|
||||
tx_active = 0;
|
||||
return 0;
|
||||
}
|
||||
@@ -212,9 +219,9 @@ static avr_cycle_count_t tx_sample(avr_t *mcu, avr_cycle_count_t when, void *par
|
||||
// model, so the ownership does not exist there and the mute cannot happen:
|
||||
// supply it, or the very state this models is untestable. The link spec's
|
||||
// trailing @n names the USART; without one the pins are nobody's.
|
||||
static avr_uart_t *tx_owner;
|
||||
avr_uart_t *tx_owner;
|
||||
|
||||
static int tx_pin_taken(void)
|
||||
bool tx_pin_taken()
|
||||
{
|
||||
return tx_owner && avr_regbit_get(avr, tx_owner->txen);
|
||||
}
|
||||
@@ -224,27 +231,26 @@ static int tx_pin_taken(void)
|
||||
// enabled, making a freshly reset chip mute for reasons hardware does not
|
||||
// have. Reset it the way the datasheet does, so the ownership starts from
|
||||
// nobody's and only an application that really enables the USART takes it.
|
||||
static void reset_tx_owner(void)
|
||||
void reset_tx_owner()
|
||||
{
|
||||
if (tx_owner)
|
||||
avr_regbit_clear(avr, tx_owner->txen);
|
||||
}
|
||||
|
||||
static void find_tx_owner(void)
|
||||
void find_tx_owner()
|
||||
{
|
||||
for (avr_io_t *io = avr->io_port; io; io = io->next)
|
||||
if (io->kind && strcmp(io->kind, "uart") == 0 && ((avr_uart_t *)io)->name == sw_tx_owner) {
|
||||
tx_owner = (avr_uart_t *)io;
|
||||
if (io->kind && std::string_view{io->kind} == "uart" &&
|
||||
reinterpret_cast<avr_uart_t *>(io)->name == sw_tx_owner) {
|
||||
tx_owner = reinterpret_cast<avr_uart_t *>(io);
|
||||
reset_tx_owner();
|
||||
return;
|
||||
}
|
||||
fprintf(stderr, "device: no USART%c to own the software link's TX pin\n", sw_tx_owner);
|
||||
std::println(stderr, "device: no USART{} to own the software link's TX pin", sw_tx_owner);
|
||||
}
|
||||
|
||||
static void tx_hook(avr_irq_t *irq, uint32_t value, void *param)
|
||||
void tx_hook(avr_irq_t *, std::uint32_t value, void *)
|
||||
{
|
||||
(void)irq;
|
||||
(void)param;
|
||||
if (tx_pin_taken()) { // the USART holds the line; the port write goes nowhere
|
||||
tx_level = 1;
|
||||
return;
|
||||
@@ -253,22 +259,20 @@ static void tx_hook(avr_irq_t *irq, uint32_t value, void *param)
|
||||
if (!tx_active && tx_level == 1 && level == 0) { // start edge
|
||||
tx_active = 1;
|
||||
tx_bit = 0;
|
||||
avr_cycle_timer_register(avr, bit_cycles + bit_cycles / 2, tx_sample, NULL);
|
||||
avr_cycle_timer_register(avr, bit_cycles + bit_cycles / 2, tx_sample, nullptr);
|
||||
}
|
||||
tx_level = level;
|
||||
}
|
||||
|
||||
static uint8_t rx_queue[8192];
|
||||
static unsigned rx_head, rx_tail; // ring: head = next to send
|
||||
static int rx_active, rx_bit;
|
||||
static uint8_t rx_byte;
|
||||
std::uint8_t rx_queue[8192];
|
||||
unsigned rx_head, rx_tail; // ring: head = next to send
|
||||
int rx_active, rx_bit;
|
||||
std::uint8_t rx_byte;
|
||||
|
||||
static void rx_start_next(void);
|
||||
void rx_start_next();
|
||||
|
||||
static avr_cycle_count_t rx_step(avr_t *mcu, avr_cycle_count_t when, void *param)
|
||||
avr_cycle_count_t rx_step(avr_t *, avr_cycle_count_t when, void *)
|
||||
{
|
||||
(void)mcu;
|
||||
(void)param;
|
||||
if (rx_bit < 8) {
|
||||
avr_raise_irq(rx_pin, (rx_byte >> rx_bit) & 1);
|
||||
rx_bit++;
|
||||
@@ -284,7 +288,7 @@ static avr_cycle_count_t rx_step(avr_t *mcu, avr_cycle_count_t when, void *param
|
||||
return 0;
|
||||
}
|
||||
|
||||
static void rx_start_next(void)
|
||||
void rx_start_next()
|
||||
{
|
||||
if (rx_active || rx_head == rx_tail)
|
||||
return;
|
||||
@@ -293,7 +297,7 @@ static void rx_start_next(void)
|
||||
rx_active = 1;
|
||||
rx_bit = 0;
|
||||
avr_raise_irq(rx_pin, 0); // start bit
|
||||
avr_cycle_timer_register(avr, bit_cycles, rx_step, NULL);
|
||||
avr_cycle_timer_register(avr, bit_cycles, rx_step, nullptr);
|
||||
}
|
||||
|
||||
// A reset abandons whatever the bridge was mid-transfer: bytes still queued
|
||||
@@ -303,10 +307,10 @@ static void rx_start_next(void)
|
||||
// output latch, whose falling edge starts a spurious decode before this
|
||||
// runs, and a stale tx_sample would then interleave with the loader's first
|
||||
// real answer through the shared shift state, corrupting it.
|
||||
static void bridge_reset(void)
|
||||
void bridge_reset()
|
||||
{
|
||||
avr_cycle_timer_cancel(avr, tx_sample, NULL);
|
||||
avr_cycle_timer_cancel(avr, rx_step, NULL);
|
||||
avr_cycle_timer_cancel(avr, tx_sample, nullptr);
|
||||
avr_cycle_timer_cancel(avr, rx_step, nullptr);
|
||||
rx_head = rx_tail = 0;
|
||||
rx_active = 0;
|
||||
tx_active = 0;
|
||||
@@ -314,9 +318,9 @@ static void bridge_reset(void)
|
||||
avr_raise_irq(rx_pin, 1); // idle line
|
||||
}
|
||||
|
||||
static void poll_pty(void)
|
||||
void poll_pty()
|
||||
{
|
||||
uint8_t chunk[256];
|
||||
std::uint8_t chunk[256];
|
||||
ssize_t got = read(pty_master, chunk, sizeof(chunk));
|
||||
for (ssize_t i = 0; i < got; i++) {
|
||||
unsigned next = (rx_tail + 1) % sizeof(rx_queue);
|
||||
@@ -331,23 +335,22 @@ static void poll_pty(void)
|
||||
|
||||
// ------------------------------------------------------------------ main ---
|
||||
|
||||
static void finish(int sig)
|
||||
[[noreturn]] void finish(int)
|
||||
{
|
||||
(void)sig;
|
||||
if (dump_path) {
|
||||
FILE *f = fopen(dump_path, "wb");
|
||||
std::FILE *f = std::fopen(dump_path, "wb");
|
||||
if (f) {
|
||||
fwrite(avr->flash, 1, avr->flashend + 1, f);
|
||||
fclose(f);
|
||||
std::fwrite(avr->flash, 1, avr->flashend + 1, f);
|
||||
std::fclose(f);
|
||||
}
|
||||
avr_eeprom_desc_t ee = {.ee = NULL, .offset = 0, .size = 0};
|
||||
avr_eeprom_desc_t ee = {.ee = nullptr, .offset = 0, .size = 0};
|
||||
if (avr_ioctl(avr, AVR_IOCTL_EEPROM_GET, &ee) == 0 && ee.ee && ee.size) {
|
||||
char path[512];
|
||||
snprintf(path, sizeof(path), "%s.eeprom", dump_path);
|
||||
f = fopen(path, "wb");
|
||||
std::snprintf(path, sizeof(path), "%s.eeprom", dump_path);
|
||||
f = std::fopen(path, "wb");
|
||||
if (f) {
|
||||
fwrite(ee.ee, 1, ee.size, f);
|
||||
fclose(f);
|
||||
std::fwrite(ee.ee, 1, ee.size, f);
|
||||
std::fclose(f);
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -356,20 +359,22 @@ static void finish(int sig)
|
||||
_exit(0);
|
||||
}
|
||||
|
||||
} // namespace
|
||||
|
||||
int main(int argc, char *argv[])
|
||||
{
|
||||
int link_given = 0;
|
||||
bool link_given = false;
|
||||
for (int opt; (opt = getopt(argc, argv, "l:")) != -1;) {
|
||||
if (opt != 'l' || parse_link(optarg) != 0) {
|
||||
fprintf(stderr, "device: bad link spec (usart0, usart1, sw, or sw:B0,B1 as RX,TX)\n");
|
||||
std::println(stderr, "device: bad link spec (usart0, usart1, sw, or sw:B0,B1 as RX,TX)");
|
||||
return 2;
|
||||
}
|
||||
link_given = 1;
|
||||
link_given = true;
|
||||
}
|
||||
int args = argc - optind;
|
||||
if (args < 7 || args > 9) {
|
||||
fprintf(stderr,
|
||||
"usage: %s [-l link] <pureboot.elf> <mcu> <hz> <base_hex> <page> <baud> <flash_dump>"
|
||||
std::print(stderr,
|
||||
"usage: {} [-l link] <pureboot.elf> <mcu> <hz> <base_hex> <page> <baud> <flash_dump>"
|
||||
" [reset_hex] [resume_flash]\n"
|
||||
" -l link: usart0 | usart1 | sw[:B0,B1[@0]] (RX,TX, then the USART owning\n"
|
||||
" them); default: the chip's own\n"
|
||||
@@ -380,53 +385,61 @@ int main(int argc, char *argv[])
|
||||
return 2;
|
||||
}
|
||||
argv += optind - 1; // argv[1] is the ELF again, whatever was parsed
|
||||
const char *mcu_name = argv[2];
|
||||
uint32_t base = (uint32_t)strtoul(argv[4], NULL, 0);
|
||||
unsigned page = (unsigned)atoi(argv[5]);
|
||||
unsigned baud = (unsigned)atoi(argv[6]);
|
||||
const std::string_view mcu_name = argv[2];
|
||||
auto base = static_cast<std::uint32_t>(std::strtoul(argv[4], nullptr, 0));
|
||||
auto page = static_cast<unsigned>(std::atoi(argv[5]));
|
||||
auto baud = static_cast<unsigned>(std::atoi(argv[6]));
|
||||
dump_path = argv[7];
|
||||
int is_mega = strncmp(mcu_name, "atmega", 6) == 0;
|
||||
const bool is_mega = mcu_name.starts_with("atmega");
|
||||
if (!link_given)
|
||||
link_software = !is_mega; // the chips' natural links: USART0, or PB0/PB1
|
||||
|
||||
avr = avr_make_mcu_by_name(mcu_name);
|
||||
avr = avr_make_mcu_by_name(mcu_name.data());
|
||||
if (!avr) {
|
||||
fprintf(stderr, "device: no %s core\n", mcu_name);
|
||||
std::println(stderr, "device: no {} core", mcu_name);
|
||||
return 1;
|
||||
}
|
||||
avr_init(avr);
|
||||
avr->frequency = (uint32_t)strtoul(argv[3], NULL, 0);
|
||||
memset(avr->flash, 0xff, avr->flashend + 1); // real flash powers up erased
|
||||
avr->frequency = static_cast<std::uint32_t>(std::strtoul(argv[3], nullptr, 0));
|
||||
std::memset(avr->flash, 0xff, avr->flashend + 1); // real flash powers up erased
|
||||
|
||||
if (args > 8) {
|
||||
// Resume: the full flash image of an interrupted prior run.
|
||||
FILE *f = fopen(argv[9], "rb");
|
||||
if (!f || fread(avr->flash, 1, avr->flashend + 1, f) == 0) {
|
||||
fprintf(stderr, "device: cannot read %s\n", argv[9]);
|
||||
std::FILE *f = std::fopen(argv[9], "rb");
|
||||
if (!f || std::fread(avr->flash, 1, avr->flashend + 1, f) == 0) {
|
||||
std::println(stderr, "device: cannot read {}", argv[9]);
|
||||
return 1;
|
||||
}
|
||||
fclose(f);
|
||||
std::fclose(f);
|
||||
} else {
|
||||
elf_firmware_t fw = {0};
|
||||
elf_firmware_t fw{};
|
||||
if (elf_read_firmware(argv[1], &fw) != 0) {
|
||||
fprintf(stderr, "device: cannot read %s\n", argv[1]);
|
||||
std::println(stderr, "device: cannot read {}", argv[1]);
|
||||
return 1;
|
||||
}
|
||||
memcpy(avr->flash + base, fw.flash, fw.flashsize);
|
||||
// An image past flash end would smash the simulator's heap and turn
|
||||
// into phantom peripheral behavior (lessons: believe the size gate
|
||||
// first) — refuse it loudly instead.
|
||||
if (base + fw.flashsize > avr->flashend + 1) {
|
||||
std::println(stderr, "device: {} B at {:#x} runs past flash end {:#x} — image does not fit its slot",
|
||||
fw.flashsize, base, avr->flashend);
|
||||
return 1;
|
||||
}
|
||||
std::memcpy(avr->flash + base, fw.flash, fw.flashsize);
|
||||
}
|
||||
// The boot-sectioned megas enter the loader in hardware (BOOTRST, not
|
||||
// modeled — the argument picks the modeled fuse's target); the tinies
|
||||
// and the boot-section-less m48s reset to word 0 like silicon — erased
|
||||
// flash walks up into the loader, and after the host's surgery the
|
||||
// patched vector routes there.
|
||||
int boot_section = is_mega && strncmp(mcu_name, "atmega48", 8) != 0;
|
||||
reset_pc = args > 7 ? (uint32_t)strtoul(argv[8], NULL, 0) : (boot_section ? base : 0);
|
||||
const bool boot_section = is_mega && !mcu_name.starts_with("atmega48");
|
||||
reset_pc = args > 7 ? static_cast<std::uint32_t>(std::strtoul(argv[8], nullptr, 0)) : (boot_section ? base : 0);
|
||||
avr->pc = reset_pc;
|
||||
avr->codeend = avr->flashend;
|
||||
|
||||
// Erased EEPROM, as hardware powers up (simavr zeroes it).
|
||||
uint8_t blank[1024];
|
||||
memset(blank, 0xff, sizeof(blank));
|
||||
std::uint8_t blank[1024];
|
||||
std::memset(blank, 0xff, sizeof(blank));
|
||||
avr_eeprom_desc_t seed = {.ee = blank, .offset = 0, .size = 0};
|
||||
if (avr_ioctl(avr, AVR_IOCTL_EEPROM_GET, &seed) == 0 && seed.size <= sizeof(blank)) {
|
||||
seed.ee = blank;
|
||||
@@ -440,7 +453,7 @@ int main(int argc, char *argv[])
|
||||
fix_mega_flash_erase();
|
||||
} else {
|
||||
nvm.page = page;
|
||||
memset(nvm.buffer, 0xff, sizeof(nvm.buffer));
|
||||
std::memset(nvm.buffer, 0xff, sizeof(nvm.buffer));
|
||||
nvm.io.kind = "tiny_nvm";
|
||||
nvm.io.ioctl = nvm_ioctl;
|
||||
avr_register_io(avr, &nvm.io);
|
||||
@@ -449,37 +462,38 @@ int main(int argc, char *argv[])
|
||||
if (!link_software) {
|
||||
// POLL_SLEEP paces an idle-polling loader in host real time (a
|
||||
// no-hardware CPU-saving hack); clear it so cycles run free.
|
||||
uint32_t flags = 0;
|
||||
std::uint32_t flags = 0;
|
||||
avr_ioctl(avr, AVR_IOCTL_UART_GET_FLAGS(uart_digit), &flags);
|
||||
flags &= ~AVR_UART_FLAG_POLL_SLEEP;
|
||||
avr_ioctl(avr, AVR_IOCTL_UART_SET_FLAGS(uart_digit), &flags);
|
||||
uart_pty_init(avr, &uart_pty);
|
||||
uart_pty_connect(&uart_pty, uart_digit);
|
||||
printf("PB_PTY %s\n", uart_pty.pty.slavename);
|
||||
std::println("PB_PTY {}", uart_pty.pty.slavename);
|
||||
} else {
|
||||
bit_cycles = (avr->frequency + baud / 2) / baud; // matches uart.hpp's own rounding exactly
|
||||
if (sw_tx_owner)
|
||||
find_tx_owner();
|
||||
rx_pin = avr_io_getirq(avr, AVR_IOCTL_IOPORT_GETIRQ(sw_rx_port), (unsigned)sw_rx_bit);
|
||||
avr_irq_register_notify(avr_io_getirq(avr, AVR_IOCTL_IOPORT_GETIRQ(sw_tx_port), (unsigned)sw_tx_bit), tx_hook,
|
||||
NULL);
|
||||
rx_pin = avr_io_getirq(avr, AVR_IOCTL_IOPORT_GETIRQ(sw_rx_port), static_cast<unsigned>(sw_rx_bit));
|
||||
avr_irq_register_notify(
|
||||
avr_io_getirq(avr, AVR_IOCTL_IOPORT_GETIRQ(sw_tx_port), static_cast<unsigned>(sw_tx_bit)), tx_hook,
|
||||
nullptr);
|
||||
avr_raise_irq(rx_pin, 1); // idle line
|
||||
|
||||
int slave;
|
||||
struct termios raw;
|
||||
cfmakeraw(&raw);
|
||||
if (openpty(&pty_master, &slave, NULL, &raw, NULL) != 0) {
|
||||
fprintf(stderr, "device: openpty failed\n");
|
||||
if (openpty(&pty_master, &slave, nullptr, &raw, nullptr) != 0) {
|
||||
std::println(stderr, "device: openpty failed");
|
||||
return 1;
|
||||
}
|
||||
fcntl(pty_master, F_SETFL, O_NONBLOCK);
|
||||
printf("PB_PTY %s\n", ttyname(slave));
|
||||
std::println("PB_PTY {}", ttyname(slave));
|
||||
}
|
||||
fflush(stdout);
|
||||
std::fflush(stdout);
|
||||
|
||||
signal(SIGTERM, finish);
|
||||
signal(SIGINT, finish);
|
||||
signal(SIGUSR1, request_reset); // an external reset line, for the tests
|
||||
std::signal(SIGTERM, finish);
|
||||
std::signal(SIGINT, finish);
|
||||
std::signal(SIGUSR1, request_reset); // an external reset line, for the tests
|
||||
|
||||
long since_poll = 0;
|
||||
for (;;) {
|
||||
@@ -491,7 +505,7 @@ int main(int argc, char *argv[])
|
||||
avr_reset(avr);
|
||||
avr->pc = reset_pc;
|
||||
if (!link_software) { // reset restores the pacing hack; re-clear it
|
||||
uint32_t flags = 0;
|
||||
std::uint32_t flags = 0;
|
||||
avr_ioctl(avr, AVR_IOCTL_UART_GET_FLAGS(uart_digit), &flags);
|
||||
flags &= ~AVR_UART_FLAG_POLL_SLEEP;
|
||||
avr_ioctl(avr, AVR_IOCTL_UART_SET_FLAGS(uart_digit), &flags);
|
||||
@@ -515,5 +529,4 @@ int main(int argc, char *argv[])
|
||||
}
|
||||
}
|
||||
finish(0);
|
||||
return 0;
|
||||
}
|
||||
71
test/test_scan.py
Normal file
71
test/test_scan.py
Normal file
@@ -0,0 +1,71 @@
|
||||
#!/usr/bin/env python3
|
||||
"""--scan's walk and report logic, no simulator: the probe order, the rate
|
||||
arithmetic, and the advice's direction. The rate physics itself is not
|
||||
sim-testable — a pty carries bytes at any termios rate — so what the wire
|
||||
would arbitrate is pinned here as logic instead.
|
||||
|
||||
Usage: test_scan.py <tool_py>
|
||||
"""
|
||||
|
||||
import os
|
||||
import sys
|
||||
|
||||
|
||||
def fail(message):
|
||||
print(f"FAIL: {message}")
|
||||
sys.exit(1)
|
||||
|
||||
|
||||
def main():
|
||||
sys.path.insert(0, os.path.dirname(os.path.abspath(sys.argv[1])))
|
||||
import pureboot as pb
|
||||
|
||||
walk = pb.scan_ratios()
|
||||
if walk != [0, -2, 2, -4, 4, -6, 6, -8, 8, -10, 10]:
|
||||
fail(f"probe walk is not built-rate-first, nearest-out: {walk}")
|
||||
|
||||
if pb.scan_rate(9600, 4) != 9984 or pb.scan_rate(9600, -4) != 9216:
|
||||
fail("probe rate arithmetic")
|
||||
if pb.scan_rate(115200, 0) != 115200:
|
||||
fail("the built rate must probe unchanged")
|
||||
|
||||
# A loader answering fast means a fast oscillator: the trim goes down.
|
||||
report = "\n".join(pb.scan_report(9600, 4, 6))
|
||||
for needle in ("9984", "+4 %", "--baud 9984", "4 steps lower", "pureboot 6"):
|
||||
if needle not in report:
|
||||
fail(f"+4 % report lacks {needle!r}:\n{report}")
|
||||
report = "\n".join(pb.scan_report(9600, -6, 6))
|
||||
if "6 steps higher" not in report:
|
||||
fail(f"-6 % report advises the wrong direction:\n{report}")
|
||||
|
||||
report = "\n".join(pb.scan_report(9600, 0, 6))
|
||||
if "none" not in report or "steps" in report:
|
||||
fail(f"an on-rate answer must advise no trim:\n{report}")
|
||||
|
||||
report = "\n".join(pb.scan_report(9600, 4, 6, clock=9600000))
|
||||
if "9984000" not in report:
|
||||
fail(f"the absolute clock must scale with the found ratio:\n{report}")
|
||||
|
||||
# The walk's rates mostly have no termios B-constant, so the POSIX port
|
||||
# must set them through termios2 — probed on a pty, which accepts the
|
||||
# ioctl without caring about the speed. Without this every off-nominal
|
||||
# probe would abort the walk on the platform --scan matters most on.
|
||||
if os.name == "posix":
|
||||
import pty
|
||||
|
||||
master, slave = pty.openpty()
|
||||
try:
|
||||
port = pb.Port(os.ttyname(slave), pb.scan_rate(9600, 4))
|
||||
port.set_baud(pb.scan_rate(9600, -4))
|
||||
port.close()
|
||||
except pb.Error as error:
|
||||
fail(f"PosixPort refused an off-nominal probe rate: {error}")
|
||||
finally:
|
||||
os.close(master)
|
||||
os.close(slave)
|
||||
|
||||
print("OK")
|
||||
|
||||
|
||||
if __name__ == "__main__":
|
||||
main()
|
||||
@@ -36,4 +36,10 @@ if ((full)); then
|
||||
done
|
||||
fi
|
||||
|
||||
# Every tree is freshly built now — the one moment the README's size table
|
||||
# can be held to what the images measure (a per-preset ctest sees only its
|
||||
# own chip; the table needs all of them, and ungated it drifts: a
|
||||
# common-code shave moves every row at once with nothing over budget).
|
||||
python3 tools/sizes.py check-readme
|
||||
|
||||
echo "check: every chip green"
|
||||
|
||||
@@ -7,11 +7,14 @@ port's TUs compile identically; the sims prove nothing new there) exist for
|
||||
libavr's reflect spot set only, mirroring its rule: the full reflect matrix
|
||||
is never built, one chip per hardware class and pack vintage is.
|
||||
|
||||
Run from the repo root: tools/make_presets.py
|
||||
Run from the repo root: tools/make_presets.py — or with --check, which
|
||||
verifies the committed file matches this generator and edits nothing (the
|
||||
ctest entry `presets.generated` runs that, so drift reds the gate).
|
||||
"""
|
||||
|
||||
import json
|
||||
import os
|
||||
import sys
|
||||
|
||||
CHIPS = [
|
||||
"attiny13", "attiny13a", "attiny25", "attiny45", "attiny85",
|
||||
@@ -41,7 +44,7 @@ def main():
|
||||
"hidden": True,
|
||||
"generator": "Ninja",
|
||||
"binaryDir": "${sourceDir}/build/${presetName}",
|
||||
"toolchainFile": "$env{LIBAVR_ROOT}/cmake/avr-toolchain.cmake",
|
||||
"toolchainFile": "${sourceDir}/libavr/cmake/avr-toolchain.cmake",
|
||||
"cacheVariables": {
|
||||
"CMAKE_BUILD_TYPE": "Release",
|
||||
"CMAKE_EXPORT_COMPILE_COMMANDS": "ON",
|
||||
@@ -72,6 +75,9 @@ def main():
|
||||
for chip in REFLECT_SPOT:
|
||||
add(chip, "reflect")
|
||||
|
||||
# CMake rejects unknown fields in the presets root, $comment included, so
|
||||
# the file cannot carry a generated-file marker; the --check ctest is the
|
||||
# whole of rule 10's guard here.
|
||||
presets = {
|
||||
"version": 8,
|
||||
"configurePresets": configure,
|
||||
@@ -79,12 +85,19 @@ def main():
|
||||
"testPresets": test,
|
||||
"workflowPresets": workflows,
|
||||
}
|
||||
rendered = json.dumps(presets, indent=1) + "\n"
|
||||
path = os.path.join(os.path.dirname(os.path.abspath(__file__)), "..", "CMakePresets.json")
|
||||
if "--check" in sys.argv[1:]:
|
||||
current = open(path).read() if os.path.exists(path) else ""
|
||||
if current != rendered:
|
||||
print("CMakePresets.json does not match its generator — run tools/make_presets.py")
|
||||
return 1
|
||||
return 0
|
||||
with open(path, "w") as f:
|
||||
json.dump(presets, f, indent=1)
|
||||
f.write("\n")
|
||||
f.write(rendered)
|
||||
print(f"{len(CHIPS)} chips, {len(REFLECT_SPOT)} reflect: {os.path.normpath(path)}")
|
||||
return 0
|
||||
|
||||
|
||||
if __name__ == "__main__":
|
||||
main()
|
||||
sys.exit(main())
|
||||
|
||||
@@ -72,6 +72,39 @@ class Suite:
|
||||
except Exception:
|
||||
pass
|
||||
|
||||
def scan(self) -> None:
|
||||
"""The --scan walk against real termios and a real oscillator: every
|
||||
probe rate must open a port (the off-nominal rates exist only through
|
||||
termios2), and one probe must answer — the nominal on a healthy board,
|
||||
a neighbor on a drifted one. The rig injects the one reset per probe
|
||||
the operator supplies in the field; this is the rate physics the
|
||||
simulator cannot arbitrate (a pty carries bytes at any rate), pinned
|
||||
on silicon."""
|
||||
module = pbrig.load_pureboot(self.rig.d.pureboot)
|
||||
found = None
|
||||
try:
|
||||
for pct in module.scan_ratios():
|
||||
rate = module.scan_rate(self.rig.d.baud, pct)
|
||||
self.rig.reset()
|
||||
try:
|
||||
port = module.Port(self.rig.d.port, rate)
|
||||
except module.Error as error:
|
||||
self.check("scan opens every probe rate", False, f"{rate} Bd: {error}")
|
||||
return
|
||||
try:
|
||||
module.Loader(port).connect(min(self.rig.d.wait, 6.0))
|
||||
found = pct
|
||||
break
|
||||
except module.Error:
|
||||
continue
|
||||
finally:
|
||||
port.close()
|
||||
except Exception as error: # noqa: BLE001 — a rig hiccup is a result
|
||||
self.check("scan walks the probe ladder", False, str(error)[:70])
|
||||
return
|
||||
self.check("scan finds the board's rate", found is not None,
|
||||
"no probe answered" if found is None else f"{found:+d} % of {self.rig.d.baud} Bd")
|
||||
|
||||
def eeprom(self, info) -> None:
|
||||
size = info.eeprom_size
|
||||
if not size:
|
||||
@@ -161,6 +194,10 @@ class Suite:
|
||||
print("\nthe loader never answered; nothing below can be trusted")
|
||||
return 1
|
||||
|
||||
if not self.rig.d.autobaud:
|
||||
print("\nscan")
|
||||
self.scan()
|
||||
|
||||
print("\nEEPROM")
|
||||
self.eeprom(info)
|
||||
|
||||
|
||||
@@ -65,7 +65,7 @@ constexpr std::uint8_t comm_window = 200;
|
||||
constexpr std::uint16_t build_date = 26 * 512 + 7 * 32 + 20;
|
||||
|
||||
// Fixed 115200 8N1; the library solves UBRR + U2X from clock and baud.
|
||||
constexpr auto baud = avr::uart::detail::solve_baud(16_MHz, 115200_Bd);
|
||||
constexpr auto baud = avr::uart::solve_baud(16_MHz, 115200_Bd);
|
||||
|
||||
// The 16-byte device-info block, streamed out on activation.
|
||||
// clang-format off
|
||||
|
||||
@@ -200,7 +200,7 @@ extern "C" [[noreturn]] void tsb_app(); // the application's reset vector: --def
|
||||
// only the divisor low byte and U2X0 need a store. The solver still does
|
||||
// the datasheet work; the asserts pin the reset-state assumptions.
|
||||
{
|
||||
constexpr auto sol = avr::uart::detail::solve_baud(dev::clock, 115200_Bd);
|
||||
constexpr auto sol = avr::uart::solve_baud(dev::clock, 115200_Bd);
|
||||
static_assert(sol.u2x && sol.ubrr < 256, "lean bring-up writes UBRR0L only, with U2X0");
|
||||
avr::hw::reg<"UBRR0">::write(static_cast<std::uint8_t>(sol.ubrr));
|
||||
avr::hw::ucsr0a::write(avr::hw::ucsr0a::u2x0(1));
|
||||
|
||||
@@ -65,7 +65,7 @@ constexpr std::uint8_t comm_window = 200;
|
||||
constexpr std::uint16_t build_date = 26 * 512 + 7 * 32 + 20;
|
||||
|
||||
// Fixed 115200 8N1; the library solves UBRR + U2X from clock and baud.
|
||||
constexpr auto baud = avr::uart::detail::solve_baud(16_MHz, 115200_Bd);
|
||||
constexpr auto baud = avr::uart::solve_baud(16_MHz, 115200_Bd);
|
||||
|
||||
// The 16-byte device-info block, streamed out on activation.
|
||||
// clang-format off
|
||||
|
||||
Reference in New Issue
Block a user